WO2012158665A2 - High efficacy lighting signal converter and associated methods - Google Patents

High efficacy lighting signal converter and associated methods Download PDF

Info

Publication number
WO2012158665A2
WO2012158665A2 PCT/US2012/037884 US2012037884W WO2012158665A2 WO 2012158665 A2 WO2012158665 A2 WO 2012158665A2 US 2012037884 W US2012037884 W US 2012037884W WO 2012158665 A2 WO2012158665 A2 WO 2012158665A2
Authority
WO
WIPO (PCT)
Prior art keywords
primary
subset
light
color
gamut
Prior art date
Application number
PCT/US2012/037884
Other languages
French (fr)
Other versions
WO2012158665A9 (en
WO2012158665A3 (en
Inventor
Fredric Maxik
Robert Soler
David Bartine
Ran Zhou
Valerie Bastien
Matthew Regan
Eliza GROVE
Original Assignee
Lighting Science
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Lighting Science filed Critical Lighting Science
Priority to EP18167602.4A priority Critical patent/EP3367375A1/en
Priority to EP12725924.0A priority patent/EP2710580A2/en
Publication of WO2012158665A2 publication Critical patent/WO2012158665A2/en
Publication of WO2012158665A3 publication Critical patent/WO2012158665A3/en
Publication of WO2012158665A9 publication Critical patent/WO2012158665A9/en

Links

Classifications

    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G3/00Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes
    • G09G3/20Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters
    • G09G3/34Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters by control of light from an independent source
    • G09G3/3406Control of illumination source
    • G09G3/3413Details of control of colour illumination sources
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B45/00Circuit arrangements for operating light-emitting diodes [LED]
    • H05B45/20Controlling the colour of the light
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2320/00Control of display operating conditions
    • G09G2320/06Adjustment of display parameters
    • G09G2320/0666Adjustment of display parameters for control of colour parameters, e.g. colour temperature
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2340/00Aspects of display data processing
    • G09G2340/06Colour space transformation

Definitions

  • the present invention relates to the field of lighting devices and, more specifically, to converting a non-optimized lighting source signal to utilize a high efficacy light emitting semiconductor.
  • Some lighting devices are generally capable of emitting light within virtually any color range. This diversity of color emitted may be accomplished via a combination of various colored primary light sources emitting light at varying luminosities. Commonly, in devices that combine light to create various colors, the primary light sources include red, blue, and green colored light.
  • Red, green, and blue are traditionally known as primary additive colors, or primaries. Additional colors may be created though the combination of the primaries. By combining two additive colors in substantially equal quantities, the secondary colors of cyan, magenta, and yellow may be created. Combing all three primary colors may produce white. By varying the luminosity of each color emitted, approximately the full color gamut may be produced.
  • the brightness of the emitted colored light may be controlled by altering the brightness of the primaries corresponding to the output color desired. If a white output color is desired, all primaries would be required to emit light at full luminosity. In a lighting system that utilizes LEDs to emit light, operating every LED at full luminosity may require using an undesirably large amount of energy and may produce and excessive amount of heat. Therefore, there exists a need for an efficient system to emit light of virtually any color included within the full color gamut without the inefficient operation characteristics of the prior art.
  • U.S. Patent No. 7,728,846 to Higgins et al. discloses converting an RGB signal to an RGBW (red-green-blue-white) through complex matrices and algorithms.
  • the Higgins et al. '846 patent outputs a signal that drives a white light source in addition to the primaries, requiring the operation of a large number of power consuming elements than before conversion of the signal may occur.
  • the proposed solutions included in the prior art that create a signal to drive a white light source commonly drive the white light source in addition to the preexisting primaries. By adding a new lighting source, the proposed solutions of the prior art may not operate with optimal efficiency characteristics. Additionally, the solutions proposed in the prior art contemplate converting an RGB into an RGBW signal. As a result, any additional input signal formats, such as the commonly used xyY color space, must first undergo conversion operations which may be computationally intensive and wasteful of energy. Furthermore, the disclosures in the prior art require the use of light sources defined within the full color gamut to reproduce light in various colors, contributing to inefficient operation of the devices included in the prior art.
  • a lighting signal converter may accept a source signal capable of defining a colored light in a two spatial plus luminance dimensional color space that includes the full color gamut, such as the xyY color space, and produce an output signal that is defined in a three dimensional color space defined by a subset gamut of the full color gamut.
  • a lighting signal converter that outputs a signal to efficiently drive a minimal number of primary light sources along with a high efficacy light source.
  • a lighting signal converter may advantageously accept a source signal that defines a colored light in a two spatial plus luminance dimensional color space which includes the full color gamut. More specifically, the present invention may advantageously accept a source input defined by the xyY color space. The present invention may also advantageously produce an output signal that is defined in the three dimensional color space defined by a subset gamut of the full color gamut. The present invention may further output a signal to efficiently drive a minimal number of primary light sources along with a high efficacy light source, advantageously reducing power consumption and heat generation.
  • a lighting device for directing source light within a predetermined source wavelength range in a desired output direction that may include a high efficacy lighting signal converter.
  • the high efficacy lighting signal converter may include a signal adapting chromacity system to control a lighting device.
  • the system may further include a signal conversion engine that receives a source signal designating a color of light defined by a two spatial plus luminance dimensional color space and converts the source signal to a three dimensional color space defined within a subset gamut of a full color gamut.
  • the subset gamut may include a first color light, a second color light and a high efficacy light.
  • the signal conversion engine may perform a conversion operation to convert the source signal to an output signal, and uses the output signal to drive light emitting diodes (LEDs).
  • the first color light and the second color light are emitted by colored LEDs, and wherein the high efficacy light is emitted by a high efficacy LED.
  • a conversion coating may be applied to the colored LEDs to convert a source light wavelength range into a converted light wavelength range.
  • the two spatial plus luminance dimensional color space may be a xyY color space.
  • the three dimensional color space defined within the full color gamut may be a RGBW color space.
  • the three dimensional color space defined within the subset gamut may be one of a RGW color space, GBW color space, or RBW color space.
  • the first color light and the second color light are selected from a group comprising a red light, a blue light, and a green light, and wherein the high efficacy light is a white light.
  • the high efficacy light is defined by a color temperature between 2000K and 10000K.
  • the conversion operation may convert the source signal to the output signal by performing a matrix conversion operation.
  • the matrices may be defined for the two spatial plus luminance dimensional color space included in the source signal.
  • the matrices may then be inverted to define inverse matrices that are processed to define a scalar including scalar values that are positive and included in the output signal.
  • the output signal may define the color of the light in the three dimensional color space defined within the subset gamut.
  • a method aspect of the present invention is for a conversion operation.
  • the conversion operation may convert the source signal to the output signal by performing a matrix conversion operation.
  • the matrices may be defined for the two spatial plus luminance dimensional color space included in the source signal.
  • the matrices may then be inverted to define inverse matrices that are processed to define a scalar including scalar values that are positive and included in the output signal.
  • the output signal may define the color of the light in the three dimensional color space defined within the subset gamut.
  • the matrices that are defined as non-square matrices may undergo square matrix preconditioning.
  • the conversion operation may convert the source signal to the output signal by performing an angular conversion operation.
  • the three dimensional color space defined by the subset gamut is divided from the full color gamut by using angular determination.
  • the subset gamut may include an origin that includes the high efficacy light and primaries that include colored light.
  • the primaries may be defined in the subset gamut including a first subset primary relative to the first color light and a second subset primary relative to the second color light.
  • a subset gamut angular range may be included between a first primary angle relative to the first subset primary and a second primary angle relative to the second primary angle.
  • the three dimensional color space included in the subset gamut may be triangularly located between the origin, the first subset primary, and the second subset primary.
  • the color of the light defined by the two spatial plus luminance dimensional color space may be plotted in the three dimensional color space of the full color gamut. Additionally, the three dimensional color space defined by the subset gamut relative to the color of the light, the color angle being located between the first primary angle and the second primary angle.
  • a first primary angular range may be included between the first primary angle and the color angle.
  • a second primary angular range is included between the second primary angle and the color angle.
  • the first primary angular range may be compared to the second primary angular range to determine a first primary angular ratio proportional to a first portion of the subset gamut angular range comprised of the first primary angular range.
  • the first primary angular ratio may determine a luminosity of the first subset primary included in the output signal.
  • the second primary angular range may be compared to the first primary angular range to determine a second primary angular ratio proportional to a second portion of the subset gamut angular range comprised of the second primary angular range.
  • the second primary angular ratio may determine the luminosity of the second subset primary included in the output signal.
  • the first subset primary and second subset primary may be analyzed to determine the luminosity of the high efficacy light included in the output signal.
  • the conversion operation may convert the source signal to the output signal by performing a linear conversion operation.
  • the three dimensional color space defined by the subset gamut is divided from the full color gamut to include an origin that includes the high efficacy light and primaries that include colored light.
  • the primaries may be defined in the subset gamuts including a first subset primary relative to the first color light and a second subset primary relative to the second color light.
  • a color point may be defined by plotting the color of the light as defined within the two spatial plus luminance dimensional color space in the three dimensional color space of the full color gamut.
  • Lines may be defined relative to the two spatial plus luminance dimensional color space.
  • the lines may include a first primary line defined between the origin and the first subset primary and a second primary line defined between the origin and the second subset primary.
  • the lines may also include a color line defined between origin and the color point including a slope and an axial intercept, and a subset gamut line that intersects the first primary line, the second primary line, and the color point.
  • the axial intercept may be located at the origin.
  • the subset gamut line may interest the first primary line at a first primary intersection distance from the origin.
  • the subset gamut line may intersect the second primary line at a second primary intersection distance from the origin.
  • the first primary intersection distance and the second primary intersection distance may be substantially equal.
  • a subset gamut linear range may be defined along the subset gamut line between the first primary line and the second primary line.
  • the subset gamut linear range may include a first primary linear range and a second primary linear range.
  • the first primary linear range may be compared to the second primary linear range to determine a first primary linear ratio proportional to a first portion of the subset gamut linear range.
  • the first portion of the subset gamut linear range may be comprised of the first primary linear range, and the first primary linear ratio determining a luminosity of the first subset primary included in the output signal.
  • the second primary linear range may be compared to the first primary linear range to determine a second primary linear ratio proportional to a second portion of the subset gamut linear range comprised of the second primary linear range, and the second primary linear ratio determining the luminosity of the second subset primary included in the output signal.
  • the luminosity of the first subset primary and the second subset primary may be analyzed to determine the desired luminosity of the high efficacy light included in the output signal.
  • FIG. 1 is a block diagram of the signal converter of the present invention.
  • FIG. 2 is a side elevation of a lighting device operated by the output signal generated by the signal converter of the present invention.
  • FIG. 3 is a block diagram of a controller of the signal converter according to the present invention that may perform a signal conversion operation.
  • FIG. 4 is a diagram of the full color gamut including subset gamuts.
  • FIG. 5 is a diagram illustrating an example of the luminosity of light emitted by primary light sources during operation of the signal converter of the present invention.
  • FIG. 5A is a variation of the diagram of FIG. 5.
  • FIGS. 6A through 6D are diagrams illustrating variations of the diagram illustrated in FIG. 5.
  • FIG. 7 is a flow chart illustrating a matrix conversion operation according to an embodiment of the present invention.
  • FIG. 8 is a diagram illustrating a variation of the diagram illustrated in FIG. 4.
  • FIG. 9 is a diagram illustrating an angular conversion operation according to an embodiment of the present invention.
  • FIG. 10 is a diagram illustrating a linear conversion operation according to an embodiment of the present invention.
  • FIG. 1 1 is a flow chart illustrating the input signals defined in one color space that may be preconditioned into a source signal prior to performing the conversion operation, according to an embodiment of the present invention.
  • the lighting signal converter 10 of the present invention may discuss the lighting signal converter 10 of the present invention as converting a source signal 20, which may be defined in the xyY color space, into an output signal 40 that may be defined in one of a RGW, RBW, or GBW color space, additional conversions are intended to be include within the scope and sprit of the present invention.
  • conversion operations which may involve converting a source signal 20 into an output signal 40 to drive light emitting devices 50.
  • the output signal 40 may include a color space, defined within a subset gamut 102 of a full color gamut 100, to be included as part of the present invention.
  • FIGS. 1-10 a signal converter 10 according to the present invention in now described in greater detail.
  • the signal converter 10 may also be referred to as a system or the invention. Alternate references of the signal converter 10 in this disclosure are not meant to be limiting in any way.
  • a subset gamut 102 may be described to include the RBW subset gamut 102RB, the RGW subset gamut, 102RG, and the GBW subset gamut 102GB.
  • the term subset gamut 102 may include one or more specific subset gamuts, such as, for example, subset gamuts 102RB, 102RG, or 102GB.
  • the signal converter 10 may include a signal conversion engine 30 that illustratively receives a source signal 20.
  • the signal conversion engine 30 may perform a conversion operation to the source signal 20.
  • the conversion operation may generate an output signal 40 that may be used to drive a lighting device 50, such as a LED lighting device.
  • the signal conversion engine 30 may convert a source signal 20 from a two spatial plus luminance dimensional color space into a three dimensional color space.
  • An example of a two spatial plus luminance dimensional color space may be provided by the xyY color space.
  • Examples of a three dimensional color space may be provided by the RGW, RBW, and GBW color spaces that are defined within a subset gamut 102RG, 102RB, 102GB of the full color gamut 100.
  • the subset gamut 102 may be defined to include the color space enclosed by two primary sources 52 and 54 and a high efficacy source 58 (see additionally FIG. 2 and 4-8).
  • an illustrative LED lighting device 50 may include three primary light sources 52, 54, 56 and a high efficacy light source 58.
  • the primary light sources 52, 54, 56 may emit light in the primary colors. More specifically, the primary colors may be emitted by, for example and without limitation, a red LED, a blue LED, and a green LED.
  • the high efficacy light source 58 may emit a light defined to emulate the color of light that may be emitted from each primary color with approximately equal luminosity. The light emitted from the high efficacy light 58 may further be defined by color temperature between 2000K and 10000K, or approximately the color temperate range of daylight. More specifically, the high efficacy light 58 may be a white light, for example, a mint white light.
  • a controller 60 may be provided to convert the source signal 20 into the output signal 40.
  • the controller 60 may include a central processing unit (CPU) 62, which may accept and execute computerized instructions.
  • the controller 60 may also include a memory 64, which may store data and instructions used by the CPU 62.
  • the controller 60 may include an input 66 to receive a source signal 20 and an output 68 to transmit an output signal 40.
  • the signal conversion engine 30 may be operated on the controller 60, and the signal conversion operation is discussed in greater detail below.
  • the color spaces of the source signal 20 and the output signal 40 will now be discussed.
  • the source signal 20 received by the signal conversion engine 30 is formatted in the CIE 1931 xyY color space.
  • the xyY color space is a color space derived from the CIE 1931 XYZ color space, and the two CIE 1931 color spaces may easily be calculated from one another.
  • the xyY color space is commonly used within the art to specify colors.
  • the "x" and “y” values may define the chromaticity of the color to be emitted by a lighting source 50 via the relative location of a corresponding point plotted on a CIE 1931 chromaticity diagram.
  • the "Y” value may define the brightness of the color to be emitted by the lighting source 50 for the corresponding color point defined by the "x" and "y” value.
  • any color may be defined within the xyY color space. Additionally, since the xyY color space may include a brightness value, calculating the luminance of the high efficacy lighting source 58 may advantageously be simplified.
  • the xyY color space is derived from the XYZ color space.
  • the "x” and “y” components may represent may the chromasity of the emitted color, which may correlate with the three colors sensed by the "cone” photoreceptors in the human eye. This correlation may contribute to enhanced color reproduction accuracy.
  • the "Y" brightness value of the xyY color space defines the brightness of the corresponding colored light, the xyY color space may accurately convey the brightness as perceived by the "rod” photoreceptors in the human eye.
  • the CIE 1931 xyY color space, and the related XYZ color space may advantageously provide accurate color reproduction, while allowing a simplified conversion between other color spaces, such as the RGB (red- green-blue) three dimensional color space.
  • the output signal 40 may define the colored light in a three dimensional color space, such as a color space included within a subset gamut 102 of the full color gamut 100.
  • gamut may be defined by the dictionary as an entire range or series, and when the term is applied to color, gamut may define a complete range of colors that may be accurately produced within a color space.
  • a full color gamut 100 is intended to include all colors that may be produced within a given color space.
  • the full color gamut 100 may be segmented into one or more subset gamuts 102.
  • the following disclosure may describe subset gamuts 102 as separate from one another and collectively forming a full color gamut 100.
  • a person of skill in the art will appreciate embodiments wherein multiple subset gamuts 102 may define the same color range within the color space, in an overlapping fashion, to be included within the scope of the present invention.
  • the following example is provided as an illustrative embodiment describing a configuration of a color space defined within a full color gamut 100 segmented into subset gamuts 102.
  • the color space within the full color gamut 100 is depicted as an equilateral triangle.
  • a primary 112 may be located at each point of the triangle that represents the full color gamut 100.
  • the primaries 112 have been depicted as the primary additive colors, red 112R, green 112G, and blue 112B, as illustrated, for example, in FIG. 8.
  • a range of colors that may be produced by mixing the primaries can be located within the triangle.
  • the secondary color of cyan which may include an equal amount of light produced by two primaries 112
  • An origin 120 may be located approximately at the center of the triangle representing the full color gamut 100.
  • the origin 120 may indicate the location wherein the corresponding light includes an equal amount of colored light emitted from each of the primaries 112, combining to produce a white light.
  • a high efficacy light 138 such as a white light, may be defined at approximately the origin 120 of the triangular model of the full color gamut 100.
  • the full color gamut 100 may be segmented into subset gamuts 02. Continuing the equilateral triangle model discussed above, for clarity, the full color gamut 100 may be segmented into three equal subset gamuts 102. Each subset gamut 102 may include and be defined by the origin 120 and two primaries 112. The two primaries used to define one of the subset gamuts may be defined as a first subset primary and a second subset primary. For example, and with reference to FIG. 8, a subset gamut 102RB may include the red primary 112R, the blue primary 112B, and the origin 120W. In the present example, the full color gamut 100 may be represented in its substantial entirety through the combination of the subset gamuts 102.
  • FIG. 5 the use of a high efficacy light 138 to replace the need for a third primary light 138 will now be discussed.
  • the diagram included in FIG. 5 is provided for illustrative purposes only, as a person of skill in the art will appreciate a plethora of additional colors that may be produced by a lighting device 50. These additional colors may be driven by the output signal 40, which may be generated by the signal converter 10 of the present invention.
  • a high efficacy light 138 may be created from the light provided by the three primaries 132, 134, 136 emitting light of substantially equivalent luminosity.
  • light that would otherwise be produced by combining equal amounts of colored light emitted from the primaries 132, 134, 136 may advantageously be replaced by a single high efficacy light 138, such as a white light.
  • colored light may include light from each primary 132, 134, 136 with varying levels of luminosity.
  • one primary 136 may require less luminosity that the other primaries 132, 134 to create the desired colored light, defining a minimum color luminosity.
  • Primaries 132, 134 that provide light with greater luminosity than the minimum color luminosity must emit light with at least the minimum color luminosity. Therefore, an equivalent amount of light may be provided by each of the primaries up to the minimum color luminosity may be advantageously emulated by the high efficacy light 138.
  • FIG. 5A illustrates a specific example of the use of a high efficacy light 138W to replace the need for a third primary light 138G will now be discussed.
  • a white light 138W may be created from the light provided by a red primary 132R, a blue primary 134B, and a green primary 136G emitting light of substantially equivalent luminosity.
  • light that would otherwise be produced by combining equal amounts of colored light emitted from the red primary 132R, the blue primary 134B, and the green primary 136G may advantageously be replaced by a single white light 138W.
  • red, blue, and green colored light may include light from each primary 132R, 134B, 136G, with varying levels of luminosity.
  • the green primary 136G may require less luminosity that the red and blue primaries 132R, 134B to create the desired colored light, defining a minimum color luminosity.
  • the red and blue primaries 132R, 134B that provide light with greater luminosity than the minimum color luminosity must emit light with at least the minimum color luminosity. Therefore, an equivalent amount of light may be provided by each of the primaries up to the minimum color luminosity may be advantageously emulated by the high efficacy light 138W.
  • the high efficacy light 138 may be produced by a high efficacy light source 58 included in the lighting device 50.
  • This high efficacy light source 58 may be driven by the output signal 40, which may be produced by the signal converter 10.
  • the light that otherwise would require the emission of an equivalent luminescence by each of the primary light sources 52, 54, 56 may advantageously be substituted by a high efficacy light 138 emitted from the high efficacy light source 58.
  • the remaining light required to create the desired color of light may continue to be emitted by the primary light sources 52, 54, or 56 that may require a luminosity greater than the minimum color luminosity.
  • first primary light source 52 may be assumed to emit a red light and the second primary light source 54 may be assumed to emit a blue light.
  • first primary light source 52 may be assumed to emit a green light and the second primary light source 54 may be assumed to emit a red light.
  • FIGS. 6A-6D illustrate graphs 130A-130D depicting the luminosity provided by the various light sources included in the color space defined in the subset gamut 102.
  • bars 132A-132D may represent the light emitted by the first primary light source 52.
  • bars 134A-134D may represent the light emitted by the second primary light source 54.
  • bars 138A-138D may represent the light emitted by the high efficacy light source 58.
  • the first, second, and third color light sources may emit light of any color, as they may be defined for each application.
  • the inclusion of the high efficacy light source 58 may negate the need for a third primary light source 56 since the high efficacy light 138 includes light that would otherwise be emitted by the three primary light sources 52, 54, 56.
  • the first example light 130A may be a slightly brightened primary color defined by the output signal 40 of the signal converter 10.
  • the high efficacy light 138A emitted by the high efficacy light source 58 is substantially less luminous than the colored light 132A emitted by the first primary light source 52.
  • virtually no colored light 134A may be emitted by the second primary light source 54.
  • the light defined by the color signal illustrated in FIG. 6A may be a bright red color.
  • the light defined by the color signal illustrated in FIG. 6A may be a bright green color.
  • the second example light 130B may be a slightly tinted white light defined by the output signal 40 of the signal converter 10.
  • the high efficacy light 138B emitted by the high efficacy light source 58 is substantially greater than the colored light 132B, 134B emitted by the first primary light source 52 and second primary light source 54.
  • limited amounts of colored light 132B, 134B may be emitted by the first primary light source 52 and the second primary light source 54.
  • the light defined by the color signal illustrated in FIG. 6B may be a light rose color.
  • the light defined by the color signal illustrated in FIG. 6B may be a light orange color.
  • the third example light 130C may be a brightened color light defined by the output signal 40 of the signal converter 10.
  • the high efficacy light 138C emitted by the high efficacy light source 58 is relatively equal to the colored light 132C, 134C emitted by the first primary light source 52 and second primary light source 54.
  • the first primary light source 52 and the second primary light source 54 may emit light with approximately equal luminosity.
  • the light defined by the color signal illustrated in FIG. 6C may be a light magenta color.
  • the light defined by the color signal illustrated in FIG. 6C may be a light yellow color.
  • the fourth example light 130D may be a slightly brightened color light defined by the output signal 40 of the signal converter 10.
  • the high efficacy light emitted 138D by the high efficacy light source 58 may be relatively similar to the colored light 134D emitted by the second primary light source 54.
  • a colored light 132D with increased luminosity may be emitted by the first primary light source 52.
  • the light defined by the color signal illustrated in FIG. 6D may be a red-violet color.
  • the light defined by the color signal illustrated in FIG. 6D may be a yellow-green color.
  • a lighting device 50 may be advantageously driven by the output signal 40 generated by the signal creator during the conversion operation.
  • the signal converter 10 may perform a computerized conversion operation to accept a source signal 20, which may include a color in a color space defined within the full color gamut 100, analyze the source signal 20, and generate an output signal 40 in a color space defined within a subset gamut 102.
  • the signal conversion operation may be performed by a component of the signal converter 10, such as a signal conversion engine 30.
  • the signal conversion engine 30, and generally the signal conversion operation may be performed on a computerized device such as the controller 60.
  • the conversion operation may be performed via a matrix conversion operation.
  • equations are included below to accompany the conversion operation as described in flowchart 200.
  • a person of skill in the art will appreciate that the included equations are provided as an example of an embodiment of performing the steps illustrated in flowchart 200, and should not be considered as limiting.
  • a skilled artisan will not read the following disclosure as being restricted to the equations illustrated below and appreciate additional equations and algorithms that may be used to operate the present invention.
  • a signal conversion engine 30 of the signal converter 10 may perform the conversion operation mentioned above by calculating the equations that are expressed below.
  • a person of skill in the art will appreciate additional equations and algorithms that may be used to perform the steps of the matrix conversion operation described herein that would be considered within the scope and spirit of the present invention.
  • the matrix conversion operation may begin by using the primaries 112 to create matrices to include the high efficacy origin (Block 204), as shown below in Expression 1.
  • the signal conversion operation may then calculate the X, Y, and Z values from the source signal 20 formatted as a xyY color space (Block 206), as shown below in Expression 2.
  • the conversion operation may next calculate the determinate of the matrices (Block 208), as shown in Expression 3.
  • I M I RX (GY*BZ - BY*GZ) - GX (RY*BZ - RZ*BY) + BX (RY*GZ - RZ*GY) Expression 3
  • the determinate may be used to calculate the matrix of minors (Block 210), as shown in Expression 4.
  • GY*BZ- BY*GZ RY*BZ - BY*RZ RY*GZ— RZ*GY M(minors) GX*BZ-GZ*BX RX*BZ-RZ*BX RX*GZ-RZ*GX
  • the conversion operation may calculate the matrix of cofactors (Block 212), as shown in Expression 5.
  • the conversion operation may next calculate the adjunct of the matrix (Block 214), as shown in Expression 6.
  • adj(A) (/ C j! Mil M12 M13 Mil M21 M31
  • M(adj) -RY*BZ - BY*RZ RX*BZ-RZ*BX -RX*BY— RY*BX
  • the conversion operation may then determine the inverse matrix from the adjunct of the matrix (Block 216), as shown in Expression 7.
  • the conversion operation may next calculate a scalar from the inverse matrix, which may include scalar values (Block 218).
  • the conversion operation may analyze the values of the scalar as it may describe each color space defined within a subset gamut 102. This comparison may start with the color space defined by a first subset gamut (Block 220).
  • the signal converter 10 may determine whether the scalar returned by the conversion operation includes all positive scalar values (Block 222). If the scalar value for the color space defined by a subset gamut 102 includes a negative number, the scalar may not be included within that subset gamut. The signal converter 10 may then analyze the scalar in the next subset gamut 102 (Block 224), after which it may return to the operation described in Block 222.
  • the signal converter 10 may determine that the scalar value is included in the color space defined by the correct subset gamut 102. The signal converter 10 may then output the output signal 40 relative to the color space defined by the proper subset gamut 102 (Block 226). After outputting the output signal 40, the matrix conversion operation may end (Block 230).
  • the color space defined within the full color gamut 100 may be represented as an equilateral triangle.
  • the primaries 112 may be located at the points of the equilateral triangle, representing the primary colors that may be combined to create additional colors within the full color gamut 100.
  • An origin 120 may be located at the midpoint of the equilateral triangle, representing the combination of all primaries 112, which may create white light. This combination has been discussed in greater detail above.
  • the color space defined within a subset gamut 102 may include a limited number of colors that are otherwise included in the full color gamut 100. However, the colors defined within the full color gamut 100 may be represented via the combination of the various subset gamuts 102. Correspondingly, a color space included within a subset gamut 102 will also be included as part of color space defined within the full color gamut 100.
  • the color space defined within the full color gamut 100 may be divided into three approximately equal subset gamuts 102.
  • the combination of these three subset gamuts may comprise the full color gamut 100.
  • the subset gamuts 102 may define approximately equal color spaces that are included within two primaries 112 and an origin 120.
  • the full color gamut 100 may be defined to include a red primary 112R, a blue primary 112B, and a green primary 112G. All colors included within the color space defined within the full color gamut 100 may be formed via a combination of the primaries 112R, 112B, 112G. A white origin 120W may be further included at the origin 120 to emit white light in addition to the colored light emitted by the primaries 112R, 112B, 112G.
  • the color spaces defined within the subset gamuts 102 may include two primaries 112 and the origin 120.
  • a first subset gamut 102RB may be defined to include a red primary 112R, a blue primary 112B, and the white origin 120W.
  • a second subset gamut 102RG may be defined to include a red primary 1 12R, a green primary 112G, and the white origin 120W.
  • a third subset gamut 102GB may be defined to include a green primary 112G, a blue primary 112B, and the white origin 120.
  • a color that may exist in the color space defined within the full color gamut 100 may also exist in at least one of the color spaces defined within a subset gamut 102.
  • the signal converter 10 may perform the angular conversion operation by plotting the color of the light defined by the source signal 20 defined by a two spatial plus luminance dimensional color space as a color point 142 onto a three dimensional color space defined within the full color gamut 100.
  • the two spatial plus luminance dimensional color space may be the xyY color space.
  • the three dimensional color space defined within the full color gamut 100 may be the RGBW color space.
  • the signal converter 10 may then determine a color angle 156 within the three dimensional color space defined by the subset gamut 102 relative to the color of the light defined by the source signal 20.
  • the color space defined within the subset gamut 102 may be radially enclosed between a first primary angle 152 and a second primary angle 154.
  • the first primary angle 152 may be defined as the angle of a line that may extend from the origin 102 to the first primary 148 of the subset gamut 102.
  • the second primary angle 154 may be defined as the angle of the line that may extend from the origin 120 to the second primary 148 of the subset gamut 102.
  • a color angle 156 may be defined relative to the location of the color of the light 142, as it has been plotted within the subset gamut 102 from the source signal 20, as shown by Expression 8.
  • a first primary angular range may be defined to enclose the angular range between the first primary angle 152 and the color angle 156. The first angular range is illustrated on FIG. 9 as ⁇ .
  • a second primary angular range may be defined to enclose the angular range between the second primary 154 and the color angle 156. The second angular range is illustrated on FIG. 9 as ⁇ .
  • the signal converter 10 may then compare the first primary angular range ⁇ and the second primary angular range ⁇ to determine the relative luminosity emitted by each primary.
  • the signal converter 10 may determine a first primary angular ratio. Similarly, by dividing the second primary angular range ⁇ by the sum of the first and second primary angular ranges ⁇ , ⁇ , the signal converter 10 may determine a second primary angular ratio.
  • the luminosity of the high efficacy light 138 may be calculated from the relative luminosity of the light emitted first and second primaries 146, 148. Alternately, the luminosity of the high efficacy light 138 may be determined by the "Y" value of a xyY source signal 20, as will be appreciated by a person of skill in the art.
  • the signal converter 10 may perform the linear conversion operation by plotting the color of the light included within the source signal 20 defined by a two spatial plus luminance dimensional color space onto a three dimensional color space defined within the full color gamut 100.
  • the two spatial plus luminance dimensional color space may be the xyY color space.
  • the three dimensional color space defined within the full color gamut 100 may be the RGBW color space.
  • the signal converter 10 may then determine a color point 162 within the three dimensional color space defined by the subset gamut 102 relative to the color of the light defined by the source signal 20.
  • the color space defined within the subset gamut 102 may be enclosed between a first primary line 172 and a second primary line 174.
  • the first primary line 172 may be defined as a line that may extend from the origin 120 to the first primary 166 of the subset gamut 102.
  • the second primary 174 line may be defined as a line that may extend from the origin 102 to the second primary 168 of the subset gamut 102.
  • a color line 164 may be defined using the slope equation, as shown by Expression 10.
  • "y” and “x” may be defined by values included in a xyY source signal 20.
  • the "m” value may define the slope of the color line 164.
  • the "b” value may define the intercept of the y-axis relative to the plotting of the color point 162 within a coordinate system.
  • the slope may be further defined by the equation shown in Expression 11.
  • a subset gamut 169 line may be defined to intersect the color point 162, the first primary line 172, and the second primary line 174. More specifically, the subset gamut line 169 may intersect the first primary line 172 at a first distance 176 from the origin 120. Similarly, the subset gamut 169 line may intersect the second primary line 174 at a second distance 178 from the origin 120. Preferably, the first distance 176 and the second distance 178 are approximately equal. As a result, the subset gamut line 169 may intersect the first and second primary lines 166, 168 at approximately the same distance from the origin 120, additionally intersecting the color point 162.
  • the linear signal conversion operation may analyze the subset gamut line 169, as it has been defined above, to determine the boundaries of each color space.
  • the signal converter 10 of the present invention may additionally determine the length of each line as it may relate to the origin by calculating a hypotenuse, as shown in Expression 13.
  • the signal converter 10 may next determine the location of the color point 162 in relation to the first and second primary lines 172, 174, via performance of the above steps for the linear signal conversion operation.
  • a first primary linear range may be defined along the subset gamut line 169 between the first primary line 172 and the color line 164.
  • the first linear range is illustrated on FIG. 10 as LQ.
  • a second primary linear range may be defined along the subset gamut line 169 between the second primary line 174 and the color line 164.
  • the second primary linear range is illustrated on FIG. 10 as L p .
  • the signal converter 10 may then compare the first primary linear range LQ and the second primary linear range ⁇ _ ⁇ to determine the relative luminosity emitted by each primary.
  • the signal converter 10 may determine a first primary linear ratio.
  • the signal converter 10 may determine a second primary linear ratio.
  • the luminosity of the high efficacy light 138 may be calculated from the relative luminosity of the light emitted as defined by the first and second primaries 166, 168. Alternately, the luminosity of the high efficacy light 138 may be determined by the "Y" value of the xyY input signal, as will be appreciated by a person of skill in the art.
  • the signal converter 10 may accept an input signal that defines a color within a color space other than a two spatial plus luminance dimensional color space, such as an xyY color space 182.
  • a color space other than a two spatial plus luminance dimensional color space such as an xyY color space 182.
  • alternate input signals may include color spaces defined within the major models of CIE color space 190, RGB color space 192, YUV color space 194, color space HSLJHSV 196, and CMYK color space 198.
  • the input signal received in alternate color spaces may be preconditioned into a source signal 20 defined within a two spatial plus luminance dimensional color space prior to initiating the conversion operation, such as the xyY color space 182.
  • an input signal may be defined within the RGBW, which may be included within the RGB color space 192.
  • the preconditioning of the input signal that includes a color defined within the RGBW color space will be described in this example using the matrices to precondition the input signal into a desired source signal 20.
  • additional operation that may be used to precondition an input signal that includes a color defined in various other color spaces into the source signal 20 to be used by the signal converter 10 to perform the conversion operation.
  • the RGBW input signal may be represented as non-square matrices.
  • the preconditioning of the RGBW input signal may begin by finding the pseudo-inverse of the non-square matrices that represent the input signal, as shown in Expression 15.
  • the preconditioning operation may be performed by reducing the non-square matrix into a bidiagonal matrix.
  • the preconditioning operation may then compute the singular value decomposition (SVD), as it is defined in the Fundamental Theorem of Linear Algebra.
  • SVD singular value decomposition
  • the preconditioning operation may decompose the non-square matrices into three matrices, as shown in Expression 16.
  • [A] may represent the non-square matrix
  • [U] may represent an orthogonal 3x3 matrix
  • [ ⁇ ] may represent a non-square 4x3 matrix.
  • the [ ⁇ ] value may be a diagonal matrix, and therefore may only include zeros off of the diagonal values, as will be understood by a person of skill in the art.
  • the diagonal values may be eigenvalues of [A] (where ⁇ - ⁇ ⁇ 2 ⁇ ⁇ 3 >... ⁇ ⁇ ⁇ ).
  • eigenvectors may comprise column value, as they may be defined in the matrices.
  • a computation known within the art may then be performed to precondition the input signal into a inverted matrix. This inverted matrix may provide the preconditioned source signal 20 that may be converted into the output signal 40.
  • the signal converter 10 of the present invention may include a photodiode to determine the color of light being emitted by LEDs.
  • the LEDs may be driven by the output signal 40 generated by the signal converter 10 via a conversion operation.
  • the photodiode may transmit a color feedback signal to the signal converter 10 of the present invention.
  • the signal converter 10 may then adjust the luminosity emitted by one or more of the primary light sources 52, 54, 56 and/or the high efficacy light source 58. The adjustments may be made to correct for discrepancies between the intended color defined by the output signal 40 and the actual color being emitted by a lighting device 50, driven by the output signal 40.

Landscapes

  • Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Computer Hardware Design (AREA)
  • General Physics & Mathematics (AREA)
  • Theoretical Computer Science (AREA)
  • Processing Of Color Television Signals (AREA)

Abstract

A signal adapting chromacity system to control that may include a signal conversion engine to receive a source signal designating a color of light defined by a two spatial plus luminance dimensional color space, such as the xxY color space. The signal conversion engine may convert the source signal to a three dimensional color space defined within a subset gamut of a full color gamut, such as an RGW, RBW, or GBW color space. The subset gamut may include a first color light, a second color light and a high efficacy light. The signal conversion engine may perform a conversion operation to convert the source signal to an output signal, using the output signal to drive light emitting diodes (LEDs). The conversion operation may be a matrix, angular or linear conversion operation.

Description

HIGH EFFICACY LIGHTING SIGNAL CONVERTER AND ASSOCIATED
METHODS
Field of the Invention
[0001] The present invention relates to the field of lighting devices and, more specifically, to converting a non-optimized lighting source signal to utilize a high efficacy light emitting semiconductor.
Background of the Invention
[0002] Some lighting devices are generally capable of emitting light within virtually any color range. This diversity of color emitted may be accomplished via a combination of various colored primary light sources emitting light at varying luminosities. Commonly, in devices that combine light to create various colors, the primary light sources include red, blue, and green colored light.
[0003] Red, green, and blue are traditionally known as primary additive colors, or primaries. Additional colors may be created though the combination of the primaries. By combining two additive colors in substantially equal quantities, the secondary colors of cyan, magenta, and yellow may be created. Combing all three primary colors may produce white. By varying the luminosity of each color emitted, approximately the full color gamut may be produced.
[0004] In systems using three primary colors to control the luminosity of the emitted light, the brightness of the emitted colored light may be controlled by altering the brightness of the primaries corresponding to the output color desired. If a white output color is desired, all primaries would be required to emit light at full luminosity. In a lighting system that utilizes LEDs to emit light, operating every LED at full luminosity may require using an undesirably large amount of energy and may produce and excessive amount of heat. Therefore, there exists a need for an efficient system to emit light of virtually any color included within the full color gamut without the inefficient operation characteristics of the prior art.
[0005] In attempts to satisfy this need for the efficient emission of colored light, inventions in the prior art have disclosed adding a white light source to supplement the primary color light sources. By including an additional white light source, the white light may provide additional brightness without requiring the primary light sources to operate at full luminosity. However, most lighting source signals do not contemplate the inclusion of a white light source, resulting in signals that cannot drive the white light source of the modified lighting device.
[0006] Previous disclosures have described methods of estimating a white input signal from an RGB (red-green-blue) input signal by using various methods. U.S. Patent Application Publication 2007/0157492 to Lo et al. discloses approximating a white value by comparing grayscale values of the primaries. However, the approximation disclosed in the Lo et al. '492 publication requires discarding luminosity values, resulting in potentially inaccurate results.
[0007] U.S. Patent No. 7,728,846 to Higgins et al. discloses converting an RGB signal to an RGBW (red-green-blue-white) through complex matrices and algorithms. However, the Higgins et al. '846 patent outputs a signal that drives a white light source in addition to the primaries, requiring the operation of a large number of power consuming elements than before conversion of the signal may occur.
[0008] The proposed solutions included in the prior art that create a signal to drive a white light source commonly drive the white light source in addition to the preexisting primaries. By adding a new lighting source, the proposed solutions of the prior art may not operate with optimal efficiency characteristics. Additionally, the solutions proposed in the prior art contemplate converting an RGB into an RGBW signal. As a result, any additional input signal formats, such as the commonly used xyY color space, must first undergo conversion operations which may be computationally intensive and wasteful of energy. Furthermore, the disclosures in the prior art require the use of light sources defined within the full color gamut to reproduce light in various colors, contributing to inefficient operation of the devices included in the prior art.
[0009] There exists a need for a lighting signal converter that may accept a source signal capable of defining a colored light in a two spatial plus luminance dimensional color space that includes the full color gamut, such as the xyY color space, and produce an output signal that is defined in a three dimensional color space defined by a subset gamut of the full color gamut. There further exists a need for a lighting signal converter that outputs a signal to efficiently drive a minimal number of primary light sources along with a high efficacy light source.
Summary of the Invention
[0010] With the foregoing in mind, it is therefore an object of the present invention to provide a lighting signal converter that may advantageously accept a source signal that defines a colored light in a two spatial plus luminance dimensional color space which includes the full color gamut. More specifically, the present invention may advantageously accept a source input defined by the xyY color space. The present invention may also advantageously produce an output signal that is defined in the three dimensional color space defined by a subset gamut of the full color gamut. The present invention may further output a signal to efficiently drive a minimal number of primary light sources along with a high efficacy light source, advantageously reducing power consumption and heat generation.
[0011] These and other objects, features, and advantages according to the presenting invention are provided by a lighting device for directing source light within a predetermined source wavelength range in a desired output direction that may include a high efficacy lighting signal converter. The high efficacy lighting signal converter may include a signal adapting chromacity system to control a lighting device. The system may further include a signal conversion engine that receives a source signal designating a color of light defined by a two spatial plus luminance dimensional color space and converts the source signal to a three dimensional color space defined within a subset gamut of a full color gamut. The subset gamut may include a first color light, a second color light and a high efficacy light.
[0012] The signal conversion engine may perform a conversion operation to convert the source signal to an output signal, and uses the output signal to drive light emitting diodes (LEDs). The first color light and the second color light are emitted by colored LEDs, and wherein the high efficacy light is emitted by a high efficacy LED. A conversion coating may be applied to the colored LEDs to convert a source light wavelength range into a converted light wavelength range.
[0013] The two spatial plus luminance dimensional color space may be a xyY color space. Additionally, the three dimensional color space defined within the full color gamut may be a RGBW color space. The three dimensional color space defined within the subset gamut may be one of a RGW color space, GBW color space, or RBW color space.
[0014] The first color light and the second color light are selected from a group comprising a red light, a blue light, and a green light, and wherein the high efficacy light is a white light. The high efficacy light is defined by a color temperature between 2000K and 10000K.
[0015] The conversion operation may convert the source signal to the output signal by performing a matrix conversion operation. In the matrix conversion operation, the matrices may be defined for the two spatial plus luminance dimensional color space included in the source signal. The matrices may then be inverted to define inverse matrices that are processed to define a scalar including scalar values that are positive and included in the output signal. The output signal may define the color of the light in the three dimensional color space defined within the subset gamut.
[0016] A method aspect of the present invention is for a conversion operation. The conversion operation may convert the source signal to the output signal by performing a matrix conversion operation. In the matrix conversion operation, the matrices may be defined for the two spatial plus luminance dimensional color space included in the source signal. The matrices may then be inverted to define inverse matrices that are processed to define a scalar including scalar values that are positive and included in the output signal. The output signal may define the color of the light in the three dimensional color space defined within the subset gamut. The matrices that are defined as non-square matrices may undergo square matrix preconditioning.
[0017] The conversion operation may convert the source signal to the output signal by performing an angular conversion operation. In the angular conversion operation, the three dimensional color space defined by the subset gamut is divided from the full color gamut by using angular determination. The subset gamut may include an origin that includes the high efficacy light and primaries that include colored light. The primaries may be defined in the subset gamut including a first subset primary relative to the first color light and a second subset primary relative to the second color light. A subset gamut angular range may be included between a first primary angle relative to the first subset primary and a second primary angle relative to the second primary angle.
[0018] The three dimensional color space included in the subset gamut may be triangularly located between the origin, the first subset primary, and the second subset primary. The color of the light defined by the two spatial plus luminance dimensional color space may be plotted in the three dimensional color space of the full color gamut. Additionally, the three dimensional color space defined by the subset gamut relative to the color of the light, the color angle being located between the first primary angle and the second primary angle.
[0019] A first primary angular range may be included between the first primary angle and the color angle. Similarly, a second primary angular range is included between the second primary angle and the color angle. The first primary angular range may be compared to the second primary angular range to determine a first primary angular ratio proportional to a first portion of the subset gamut angular range comprised of the first primary angular range. The first primary angular ratio may determine a luminosity of the first subset primary included in the output signal.
[0020] Similarly, the second primary angular range may be compared to the first primary angular range to determine a second primary angular ratio proportional to a second portion of the subset gamut angular range comprised of the second primary angular range. The second primary angular ratio may determine the luminosity of the second subset primary included in the output signal. The first subset primary and second subset primary may be analyzed to determine the luminosity of the high efficacy light included in the output signal.
[0021] The conversion operation may convert the source signal to the output signal by performing a linear conversion operation. In the linear conversion, the three dimensional color space defined by the subset gamut is divided from the full color gamut to include an origin that includes the high efficacy light and primaries that include colored light. The primaries may be defined in the subset gamuts including a first subset primary relative to the first color light and a second subset primary relative to the second color light. A color point may be defined by plotting the color of the light as defined within the two spatial plus luminance dimensional color space in the three dimensional color space of the full color gamut.
[0022] Lines may be defined relative to the two spatial plus luminance dimensional color space. The lines may include a first primary line defined between the origin and the first subset primary and a second primary line defined between the origin and the second subset primary. The lines may also include a color line defined between origin and the color point including a slope and an axial intercept, and a subset gamut line that intersects the first primary line, the second primary line, and the color point.
[0023] The axial intercept may be located at the origin. The subset gamut line may interest the first primary line at a first primary intersection distance from the origin The subset gamut line may intersect the second primary line at a second primary intersection distance from the origin. The first primary intersection distance and the second primary intersection distance may be substantially equal.
[0024] A subset gamut linear range may be defined along the subset gamut line between the first primary line and the second primary line. The subset gamut linear range may include a first primary linear range and a second primary linear range. The first primary linear range may be compared to the second primary linear range to determine a first primary linear ratio proportional to a first portion of the subset gamut linear range. The first portion of the subset gamut linear range may be comprised of the first primary linear range, and the first primary linear ratio determining a luminosity of the first subset primary included in the output signal.
[0025] The second primary linear range may be compared to the first primary linear range to determine a second primary linear ratio proportional to a second portion of the subset gamut linear range comprised of the second primary linear range, and the second primary linear ratio determining the luminosity of the second subset primary included in the output signal. The luminosity of the first subset primary and the second subset primary may be analyzed to determine the desired luminosity of the high efficacy light included in the output signal.
Brief Description of the Drawings
[0026] FIG. 1 is a block diagram of the signal converter of the present invention.
[0027] FIG. 2 is a side elevation of a lighting device operated by the output signal generated by the signal converter of the present invention.
[0028] FIG. 3 is a block diagram of a controller of the signal converter according to the present invention that may perform a signal conversion operation.
[0029] FIG. 4 is a diagram of the full color gamut including subset gamuts.
[0030] FIG. 5 is a diagram illustrating an example of the luminosity of light emitted by primary light sources during operation of the signal converter of the present invention.
[0031] FIG. 5A is a variation of the diagram of FIG. 5.
[0032] FIGS. 6A through 6D are diagrams illustrating variations of the diagram illustrated in FIG. 5.
[0033] FIG. 7 is a flow chart illustrating a matrix conversion operation according to an embodiment of the present invention.
[0034] FIG. 8 is a diagram illustrating a variation of the diagram illustrated in FIG. 4.
[0035] FIG. 9 is a diagram illustrating an angular conversion operation according to an embodiment of the present invention. [0036] FIG. 10 is a diagram illustrating a linear conversion operation according to an embodiment of the present invention.
[0037] FIG. 1 1 is a flow chart illustrating the input signals defined in one color space that may be preconditioned into a source signal prior to performing the conversion operation, according to an embodiment of the present invention.
Detailed Description of the Preferred Embodiment
[0038] The present invention will now be described more fully hereinafter with reference to the accompanying drawings, in which preferred embodiments of the invention are shown. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art. Those of ordinary skill in the art realize that the following descriptions of the embodiments of the present invention are illustrative and are not intended to be limiting in any way. Other embodiments of the present invention will readily suggest themselves to such skilled persons having the benefit of this disclosure. Like numbers refer to like elements throughout.
[0039] In this detailed description of the present invention, a person skilled in the art should note that directional terms, such as "above," "below," "upper," "lower," and other like terms are used for the convenience of the reader in reference to the drawings. Also, a person skilled in the art should notice this description may contain other terminology to convey position, orientation, and direction without departing from the principles of the present invention.
[0040] A person of skill in the art will appreciate that, while the following disclosure may discuss the lighting signal converter 10 of the present invention as converting a source signal 20, which may be defined in the xyY color space, into an output signal 40 that may be defined in one of a RGW, RBW, or GBW color space, additional conversions are intended to be include within the scope and sprit of the present invention. A skilled artisan will also appreciate conversion operations, which may involve converting a source signal 20 into an output signal 40 to drive light emitting devices 50. A skilled artisan will further appreciate that the output signal 40 may include a color space, defined within a subset gamut 102 of a full color gamut 100, to be included as part of the present invention.
[0041] Referring now to FIGS. 1-10, a signal converter 10 according to the present invention in now described in greater detail. Throughout this disclosure, the signal converter 10 may also be referred to as a system or the invention. Alternate references of the signal converter 10 in this disclosure are not meant to be limiting in any way.
[0042] In the following disclosure, referring initially to FIG. 8, a subset gamut 102 may be described to include the RBW subset gamut 102RB, the RGW subset gamut, 102RG, and the GBW subset gamut 102GB. A person of skill in the art will appreciate that the term subset gamut 102 may include one or more specific subset gamuts, such as, for example, subset gamuts 102RB, 102RG, or 102GB.
[0043] Referring back to FIG. 1 , the signal converter 10 according to an embodiment of the present invention may include a signal conversion engine 30 that illustratively receives a source signal 20. The signal conversion engine 30 may perform a conversion operation to the source signal 20. The conversion operation may generate an output signal 40 that may be used to drive a lighting device 50, such as a LED lighting device. More specifically, the signal conversion engine 30 may convert a source signal 20 from a two spatial plus luminance dimensional color space into a three dimensional color space. An example of a two spatial plus luminance dimensional color space may be provided by the xyY color space. Examples of a three dimensional color space may be provided by the RGW, RBW, and GBW color spaces that are defined within a subset gamut 102RG, 102RB, 102GB of the full color gamut 100. The subset gamut 102 may be defined to include the color space enclosed by two primary sources 52 and 54 and a high efficacy source 58 (see additionally FIG. 2 and 4-8).
[0044] As perhaps best illustrated in FIG. 2, an illustrative LED lighting device 50 may include three primary light sources 52, 54, 56 and a high efficacy light source 58. The primary light sources 52, 54, 56 may emit light in the primary colors. More specifically, the primary colors may be emitted by, for example and without limitation, a red LED, a blue LED, and a green LED. The high efficacy light source 58 may emit a light defined to emulate the color of light that may be emitted from each primary color with approximately equal luminosity. The light emitted from the high efficacy light 58 may further be defined by color temperature between 2000K and 10000K, or approximately the color temperate range of daylight. More specifically, the high efficacy light 58 may be a white light, for example, a mint white light.
[0045] As perhaps best illustrated in FIG. 3, a controller 60 may be provided to convert the source signal 20 into the output signal 40. The controller 60 may include a central processing unit (CPU) 62, which may accept and execute computerized instructions. The controller 60 may also include a memory 64, which may store data and instructions used by the CPU 62. Additionally, the controller 60 may include an input 66 to receive a source signal 20 and an output 68 to transmit an output signal 40. The signal conversion engine 30 may be operated on the controller 60, and the signal conversion operation is discussed in greater detail below.
[0046] Referring again back to FIG. 1 , the color spaces of the source signal 20 and the output signal 40 will now be discussed. Preferably, the source signal 20 received by the signal conversion engine 30 is formatted in the CIE 1931 xyY color space. The xyY color space is a color space derived from the CIE 1931 XYZ color space, and the two CIE 1931 color spaces may easily be calculated from one another. As a result, the xyY color space is commonly used within the art to specify colors.
[0047] In the xyY space, the "x" and "y" values may define the chromaticity of the color to be emitted by a lighting source 50 via the relative location of a corresponding point plotted on a CIE 1931 chromaticity diagram. The "Y" value may define the brightness of the color to be emitted by the lighting source 50 for the corresponding color point defined by the "x" and "y" value.
[0048] By combining the color as defined by the chromaticity values with the corresponding luminosity defined by the brightness values, virtually any color may be defined within the xyY color space. Additionally, since the xyY color space may include a brightness value, calculating the luminance of the high efficacy lighting source 58 may advantageously be simplified.
[0049] As previously mentioned, the xyY color space is derived from the XYZ color space. The "x" and "y" components may represent may the chromasity of the emitted color, which may correlate with the three colors sensed by the "cone" photoreceptors in the human eye. This correlation may contribute to enhanced color reproduction accuracy. Also, since the "Y" brightness value of the xyY color space defines the brightness of the corresponding colored light, the xyY color space may accurately convey the brightness as perceived by the "rod" photoreceptors in the human eye. For this reason, the CIE 1931 xyY color space, and the related XYZ color space, may advantageously provide accurate color reproduction, while allowing a simplified conversion between other color spaces, such as the RGB (red- green-blue) three dimensional color space.
[0050] The output signal 40 may define the colored light in a three dimensional color space, such as a color space included within a subset gamut 102 of the full color gamut 100. The term gamut may be defined by the dictionary as an entire range or series, and when the term is applied to color, gamut may define a complete range of colors that may be accurately produced within a color space. Correspondingly, a full color gamut 100 is intended to include all colors that may be produced within a given color space.
[0051] Additionally, as used within this disclosure, the full color gamut 100 may be segmented into one or more subset gamuts 102. The following disclosure may describe subset gamuts 102 as separate from one another and collectively forming a full color gamut 100. However, a person of skill in the art will appreciate embodiments wherein multiple subset gamuts 102 may define the same color range within the color space, in an overlapping fashion, to be included within the scope of the present invention.
[0052] As illustrated in FIG. 4, the following example is provided as an illustrative embodiment describing a configuration of a color space defined within a full color gamut 100 segmented into subset gamuts 102. For clarity, the color space within the full color gamut 100 is depicted as an equilateral triangle. A primary 112 may be located at each point of the triangle that represents the full color gamut 100. For clarity, but not intended as a limitation, the primaries 112 have been depicted as the primary additive colors, red 112R, green 112G, and blue 112B, as illustrated, for example, in FIG. 8.
[0053] Continuing to refer to the equilateral triangle representing the full color gamut 100, a range of colors that may be produced by mixing the primaries can be located within the triangle. For example, the secondary color of cyan, which may include an equal amount of light produced by two primaries 112, may be represented at the midpoint of the triangle's side, between the blue primary and the green primary. Additional colors that may include light from three primaries may be represented at locations within the interior of the triangle.
[0054] An origin 120 may be located approximately at the center of the triangle representing the full color gamut 100. The origin 120 may indicate the location wherein the corresponding light includes an equal amount of colored light emitted from each of the primaries 112, combining to produce a white light. As will be described below, a high efficacy light 138, such as a white light, may be defined at approximately the origin 120 of the triangular model of the full color gamut 100.
[0055] The full color gamut 100 may be segmented into subset gamuts 02. Continuing the equilateral triangle model discussed above, for clarity, the full color gamut 100 may be segmented into three equal subset gamuts 102. Each subset gamut 102 may include and be defined by the origin 120 and two primaries 112. The two primaries used to define one of the subset gamuts may be defined as a first subset primary and a second subset primary. For example, and with reference to FIG. 8, a subset gamut 102RB may include the red primary 112R, the blue primary 112B, and the origin 120W. In the present example, the full color gamut 100 may be represented in its substantial entirety through the combination of the subset gamuts 102.
[0056] Referring now to FIG. 5, the use of a high efficacy light 138 to replace the need for a third primary light 138 will now be discussed. The diagram included in FIG. 5 is provided for illustrative purposes only, as a person of skill in the art will appreciate a plethora of additional colors that may be produced by a lighting device 50. These additional colors may be driven by the output signal 40, which may be generated by the signal converter 10 of the present invention.
[0057] A high efficacy light 138 may be created from the light provided by the three primaries 132, 134, 136 emitting light of substantially equivalent luminosity. Correspondingly, light that would otherwise be produced by combining equal amounts of colored light emitted from the primaries 132, 134, 136 may advantageously be replaced by a single high efficacy light 138, such as a white light.
[0058] As discussed above, colored light may include light from each primary 132, 134, 136 with varying levels of luminosity. As a result, one primary 136 may require less luminosity that the other primaries 132, 134 to create the desired colored light, defining a minimum color luminosity. Primaries 132, 134 that provide light with greater luminosity than the minimum color luminosity must emit light with at least the minimum color luminosity. Therefore, an equivalent amount of light may be provided by each of the primaries up to the minimum color luminosity may be advantageously emulated by the high efficacy light 138.
[0059] FIG. 5A illustrates a specific example of the use of a high efficacy light 138W to replace the need for a third primary light 138G will now be discussed. A white light 138W may be created from the light provided by a red primary 132R, a blue primary 134B, and a green primary 136G emitting light of substantially equivalent luminosity. Correspondingly, light that would otherwise be produced by combining equal amounts of colored light emitted from the red primary 132R, the blue primary 134B, and the green primary 136G may advantageously be replaced by a single white light 138W.
[0060] As discussed above, red, blue, and green colored light may include light from each primary 132R, 134B, 136G, with varying levels of luminosity. As a result, the green primary 136G may require less luminosity that the red and blue primaries 132R, 134B to create the desired colored light, defining a minimum color luminosity. The red and blue primaries 132R, 134B that provide light with greater luminosity than the minimum color luminosity must emit light with at least the minimum color luminosity. Therefore, an equivalent amount of light may be provided by each of the primaries up to the minimum color luminosity may be advantageously emulated by the high efficacy light 138W.
[0061] Referring additionally to FIG. 2, the high efficacy light 138 may be produced by a high efficacy light source 58 included in the lighting device 50. This high efficacy light source 58 may be driven by the output signal 40, which may be produced by the signal converter 10. The light that otherwise would require the emission of an equivalent luminescence by each of the primary light sources 52, 54, 56 may advantageously be substituted by a high efficacy light 138 emitted from the high efficacy light source 58. The remaining light required to create the desired color of light may continue to be emitted by the primary light sources 52, 54, or 56 that may require a luminosity greater than the minimum color luminosity.
[0062] The following examples have been provided to help clarify the use of a high efficacy light source 58 to replace the need for a third primary color light source 56. A person of skill in the art will appreciate that the following examples are provided for illustrative purposes, and are not intended to be limiting in any way.
[0063] For additional clarity, the follow examples may be described in a first specific non-limiting example, wherein the first primary light source 52 may be assumed to emit a red light and the second primary light source 54 may be assumed to emit a blue light. The following examples may additionally be described in a second specific non-limiting example, wherein the first primary light source 52 may be assumed to emit a green light and the second primary light source 54 may be assumed to emit a red light.
[0064] FIGS. 6A-6D illustrate graphs 130A-130D depicting the luminosity provided by the various light sources included in the color space defined in the subset gamut 102. Viewed along with FIG. 2, bars 132A-132D may represent the light emitted by the first primary light source 52. Similarly, bars 134A-134D may represent the light emitted by the second primary light source 54. Finally, bars 138A-138D may represent the light emitted by the high efficacy light source 58. A person of skill in the art will appreciate the first, second, and third color light sources may emit light of any color, as they may be defined for each application. As stated above, the inclusion of the high efficacy light source 58 may negate the need for a third primary light source 56 since the high efficacy light 138 includes light that would otherwise be emitted by the three primary light sources 52, 54, 56.
[0065] More specifically, as illustrated in FIG. 6A, the first example light 130A may be a slightly brightened primary color defined by the output signal 40 of the signal converter 10. Here, the high efficacy light 138A emitted by the high efficacy light source 58 is substantially less luminous than the colored light 132A emitted by the first primary light source 52. Additionally, virtually no colored light 134A may be emitted by the second primary light source 54. In the first specific example, the light defined by the color signal illustrated in FIG. 6A may be a bright red color. In the second specific example, the light defined by the color signal illustrated in FIG. 6A may be a bright green color.
[0066] Additionally, as illustrated in FIG. 6B, the second example light 130B may be a slightly tinted white light defined by the output signal 40 of the signal converter 10. Here, the high efficacy light 138B emitted by the high efficacy light source 58 is substantially greater than the colored light 132B, 134B emitted by the first primary light source 52 and second primary light source 54. However, limited amounts of colored light 132B, 134B may be emitted by the first primary light source 52 and the second primary light source 54. In the first specific example, the light defined by the color signal illustrated in FIG. 6B may be a light rose color. In the second specific example, the light defined by the color signal illustrated in FIG. 6B may be a light orange color.
[0067] As illustrated in FIG. 6C, the third example light 130C may be a brightened color light defined by the output signal 40 of the signal converter 10. Here, the high efficacy light 138C emitted by the high efficacy light source 58 is relatively equal to the colored light 132C, 134C emitted by the first primary light source 52 and second primary light source 54. Furthermore, the first primary light source 52 and the second primary light source 54 may emit light with approximately equal luminosity. In the first specific example, the light defined by the color signal illustrated in FIG. 6C may be a light magenta color. In the second specific example, the light defined by the color signal illustrated in FIG. 6C may be a light yellow color.
[0068] As illustrated in FIG. 6D, the fourth example light 130D may be a slightly brightened color light defined by the output signal 40 of the signal converter 10. Here, the high efficacy light emitted 138D by the high efficacy light source 58 may be relatively similar to the colored light 134D emitted by the second primary light source 54. Additionally, a colored light 132D with increased luminosity may be emitted by the first primary light source 52. In the first specific example, the light defined by the color signal illustrated in FIG. 6D may be a red-violet color. In the second specific example, the light defined by the color signal illustrated in FIG. 6D may be a yellow-green color.
[0069] As illustrated by the examples above, virtually any color that may be produced by a lighting device 50 that replaces a third primary light source 56 with a high efficacy light source 58. Such a lighting device 50 may be advantageously driven by the output signal 40 generated by the signal creator during the conversion operation.
[0070] The signal converter 10 may perform a computerized conversion operation to accept a source signal 20, which may include a color in a color space defined within the full color gamut 100, analyze the source signal 20, and generate an output signal 40 in a color space defined within a subset gamut 102. The signal conversion operation may be performed by a component of the signal converter 10, such as a signal conversion engine 30. The signal conversion engine 30, and generally the signal conversion operation, may be performed on a computerized device such as the controller 60.
[0071] In an embodiment of the present invention, as perhaps best illustrated by the flowchart 200 of FIG. 7, the conversion operation may be performed via a matrix conversion operation. For clarity, equations are included below to accompany the conversion operation as described in flowchart 200. A person of skill in the art will appreciate that the included equations are provided as an example of an embodiment of performing the steps illustrated in flowchart 200, and should not be considered as limiting. Correspondingly, a skilled artisan will not read the following disclosure as being restricted to the equations illustrated below and appreciate additional equations and algorithms that may be used to operate the present invention.
[0072] Included as a non-limiting example, a signal conversion engine 30 of the signal converter 10 may perform the conversion operation mentioned above by calculating the equations that are expressed below. A person of skill in the art will appreciate additional equations and algorithms that may be used to perform the steps of the matrix conversion operation described herein that would be considered within the scope and spirit of the present invention.
[0073] Starting at Block 202, using the fundamental rules of colorimetry, the matrix conversion operation may begin by using the primaries 112 to create matrices to include the high efficacy origin (Block 204), as shown below in Expression 1.
[M] = RX ex BX
RY GY BY
RZ G2 BZ
Expression 1
[0074] The signal conversion operation may then calculate the X, Y, and Z values from the source signal 20 formatted as a xyY color space (Block 206), as shown below in Expression 2.
Figure imgf000018_0001
z = (l - x- y) *Y
y
Expression 2
[0075] The conversion operation may next calculate the determinate of the matrices (Block 208), as shown in Expression 3.
Figure imgf000019_0001
GY BY RY BY KY GY
RX - GX + BX
GZ BZ RZ BZ RZ GZ
Where,
Al 61
[M]=
A2 B2 |M|=(A1*B2 -A2*B1)
I M I = RX (GY*BZ - BY*GZ) - GX (RY*BZ - RZ*BY) + BX (RY*GZ - RZ*GY) Expression 3
[0076] The determinate may be used to calculate the matrix of minors (Block 210), as shown in Expression 4.
[ ] = RX GX BX
RY GY BY RZ GZ BZ
Figure imgf000020_0001
Figure imgf000020_0002
Figure imgf000020_0003
GY*BZ- BY*GZ RY*BZ - BY*RZ RY*GZ— RZ*GY M(minors)= GX*BZ-GZ*BX RX*BZ-RZ*BX RX*GZ-RZ*GX
GX*BY-GY*BX RX*BY— RY*BX RX*GY-RY*GX
Expression 4
[0077] With the matrix of minors, the conversion operation may calculate the matrix of cofactors (Block 212), as shown in Expression 5.
Mil M12, M13
= (-\)'+iMij (Where M = M21 M22 M23 )
M31 M32 M33 GY*BZ-BY*GZ -RY*BZ- BY*RZ RY*GZ-RZ*GY (cofactors) = -GX*BZ-GZ*BX RX*BZ - RZ*BX RX*GZ-RZ*GX
GX* BY-GY*BX -RX*BY - RY*BX RX*GY - RY*GX
Expression 5
[0078] The conversion operation may next calculate the adjunct of the matrix (Block 214), as shown in Expression 6. adj(A)(/ =Cj! Mil M12 M13 Mil M21 M31
M21 M22 M23 => M12 M22 M32 M31 M32 M33 M13 M23 M33
6Y*BZ-BY*GZ -GX*BZ-GZ*BX GX*BY-GY*BX
M(adj) = -RY*BZ - BY*RZ RX*BZ-RZ*BX -RX*BY— RY*BX
RY*GZ - RZ*GY -RX*GZ-RZ*GX RX*GY-RY*GX
Expression 6
[0079] The conversion operation may then determine the inverse matrix from the adjunct of the matrix (Block 216), as shown in Expression 7.
, adj(M)
M =
\M GY*BZ - BY'i'GZ -GX*BZ - GZ*BX GX*BY - GY* BX -RY*BZ - BY*RZ RX*BZ - RZ*BX -RX*BY - RY*BX RY*GZ - RZ*GY -RX*GZ - RZ*GX RX*GY - RY*GX
RX (GY*BZ - BY*GZ) - GX (RY*BZ - RZ*BY) + BX (RY*GZ - RZ*GY) Expression 7
[0080] The conversion operation may next calculate a scalar from the inverse matrix, which may include scalar values (Block 218). The conversion operation may analyze the values of the scalar as it may describe each color space defined within a subset gamut 102. This comparison may start with the color space defined by a first subset gamut (Block 220).
[0081] The signal converter 10 then may determine whether the scalar returned by the conversion operation includes all positive scalar values (Block 222). If the scalar value for the color space defined by a subset gamut 102 includes a negative number, the scalar may not be included within that subset gamut. The signal converter 10 may then analyze the scalar in the next subset gamut 102 (Block 224), after which it may return to the operation described in Block 222.
[0082] Conversely, if the scalar includes all positive scalar values at Block 222, the signal converter 10 may determine that the scalar value is included in the color space defined by the correct subset gamut 102. The signal converter 10 may then output the output signal 40 relative to the color space defined by the proper subset gamut 102 (Block 226). After outputting the output signal 40, the matrix conversion operation may end (Block 230).
[0083] Referring back to FIG. 4, for illustrative purposes, the color space defined within the full color gamut 100 may be represented as an equilateral triangle. The primaries 112 may be located at the points of the equilateral triangle, representing the primary colors that may be combined to create additional colors within the full color gamut 100. An origin 120 may be located at the midpoint of the equilateral triangle, representing the combination of all primaries 112, which may create white light. This combination has been discussed in greater detail above.
[0084] The color space defined within a subset gamut 102 may include a limited number of colors that are otherwise included in the full color gamut 100. However, the colors defined within the full color gamut 100 may be represented via the combination of the various subset gamuts 102. Correspondingly, a color space included within a subset gamut 102 will also be included as part of color space defined within the full color gamut 100.
[0085] In an example of the present invention, as illustrated in FIG. 4, the color space defined within the full color gamut 100 may be divided into three approximately equal subset gamuts 102. The combination of these three subset gamuts may comprise the full color gamut 100. More specifically, provided as a non-limiting example, the subset gamuts 102 may define approximately equal color spaces that are included within two primaries 112 and an origin 120.
[0086] With reference to FIG. 8, a specific example will now be provided for clarity, and should be appreciated as non-limiting by a person of skill in the art. The full color gamut 100 may be defined to include a red primary 112R, a blue primary 112B, and a green primary 112G. All colors included within the color space defined within the full color gamut 100 may be formed via a combination of the primaries 112R, 112B, 112G. A white origin 120W may be further included at the origin 120 to emit white light in addition to the colored light emitted by the primaries 112R, 112B, 112G.
[0087] In this specific example, the color spaces defined within the subset gamuts 102 may include two primaries 112 and the origin 120. A first subset gamut 102RB may be defined to include a red primary 112R, a blue primary 112B, and the white origin 120W. Similarly, a second subset gamut 102RG may be defined to include a red primary 1 12R, a green primary 112G, and the white origin 120W. A third subset gamut 102GB may be defined to include a green primary 112G, a blue primary 112B, and the white origin 120. In this example, a color that may exist in the color space defined within the full color gamut 100 may also exist in at least one of the color spaces defined within a subset gamut 102. [0088] An embodiment of the conversion operation using an angular conversion operation, as perhaps best illustrated in FIG. 9, will now be discussed. The signal converter 10 may perform the angular conversion operation by plotting the color of the light defined by the source signal 20 defined by a two spatial plus luminance dimensional color space as a color point 142 onto a three dimensional color space defined within the full color gamut 100. The two spatial plus luminance dimensional color space may be the xyY color space. The three dimensional color space defined within the full color gamut 100 may be the RGBW color space.
[0089] The signal converter 10 may then determine a color angle 156 within the three dimensional color space defined by the subset gamut 102 relative to the color of the light defined by the source signal 20. The color space defined within the subset gamut 102 may be radially enclosed between a first primary angle 152 and a second primary angle 154. The first primary angle 152 may be defined as the angle of a line that may extend from the origin 102 to the first primary 148 of the subset gamut 102. The second primary angle 154 may be defined as the angle of the line that may extend from the origin 120 to the second primary 148 of the subset gamut 102.
[0090] A color angle 156 may be defined relative to the location of the color of the light 142, as it has been plotted within the subset gamut 102 from the source signal 20, as shown by Expression 8.
Figure imgf000024_0001
Expression 8
[0091] A first primary angular range may be defined to enclose the angular range between the first primary angle 152 and the color angle 156. The first angular range is illustrated on FIG. 9 as Θ. Similarly, a second primary angular range may be defined to enclose the angular range between the second primary 154 and the color angle 156. The second angular range is illustrated on FIG. 9 as β. [0092] The signal converter 10 may then compare the first primary angular range Θ and the second primary angular range β to determine the relative luminosity emitted by each primary. By dividing the first primary range Θ by the sum of the first and second primary angular ranges Θ, β, the signal converter 10 may determine a first primary angular ratio. Similarly, by dividing the second primary angular range β by the sum of the first and second primary angular ranges Θ, β, the signal converter 10 may determine a second primary angular ratio. An example of these calculations, wherein the first primary light source 52 emits a red light, and wherein the second primary light source emits a green light 54, are shown by Expression 9.
Figure imgf000025_0001
Expression 9
[0093] The luminosity of the high efficacy light 138 may be calculated from the relative luminosity of the light emitted first and second primaries 146, 148. Alternately, the luminosity of the high efficacy light 138 may be determined by the "Y" value of a xyY source signal 20, as will be appreciated by a person of skill in the art.
[0094] An embodiment of the conversion . operation using a linear conversion operation, as perhaps best illustrated in FIG. 10, will now be discussed. The signal converter 10 may perform the linear conversion operation by plotting the color of the light included within the source signal 20 defined by a two spatial plus luminance dimensional color space onto a three dimensional color space defined within the full color gamut 100. The two spatial plus luminance dimensional color space may be the xyY color space. The three dimensional color space defined within the full color gamut 100 may be the RGBW color space.
[0095] The signal converter 10 may then determine a color point 162 within the three dimensional color space defined by the subset gamut 102 relative to the color of the light defined by the source signal 20. The color space defined within the subset gamut 102 may be enclosed between a first primary line 172 and a second primary line 174. The first primary line 172 may be defined as a line that may extend from the origin 120 to the first primary 166 of the subset gamut 102. The second primary 174 line may be defined as a line that may extend from the origin 102 to the second primary 168 of the subset gamut 102.
[0096] A color line 164 may be defined using the slope equation, as shown by Expression 10. In this expression, "y" and "x" may be defined by values included in a xyY source signal 20. The "m" value may define the slope of the color line 164. The "b" value may define the intercept of the y-axis relative to the plotting of the color point 162 within a coordinate system. An example coordinate system may include the equilateral triangle representing the color space defined by full color gamut 100. y = mx b
Expression 10
[0097] The slope may be further defined by the equation shown in Expression 11.
tn =--——r——
Expression 11
[0098] The point at which the color line 164 may intercept the y-axis, represented by "b," may be defined to be located at the origin 120. This location of the y-intercept as the origin 120 results in all "b" values becoming zero, simplifying the equation sown in Expression 10 into the equation shown in Expression 12. Λ- y = rrix
Expression 12
[0099] Additionally, a subset gamut 169 line may be defined to intersect the color point 162, the first primary line 172, and the second primary line 174. More specifically, the subset gamut line 169 may intersect the first primary line 172 at a first distance 176 from the origin 120. Similarly, the subset gamut 169 line may intersect the second primary line 174 at a second distance 178 from the origin 120. Preferably, the first distance 176 and the second distance 178 are approximately equal. As a result, the subset gamut line 169 may intersect the first and second primary lines 166, 168 at approximately the same distance from the origin 120, additionally intersecting the color point 162.
[00100] The linear signal conversion operation may analyze the subset gamut line 169, as it has been defined above, to determine the boundaries of each color space. In performing the linear signal conversion operation, the signal converter 10 of the present invention may additionally determine the length of each line as it may relate to the origin by calculating a hypotenuse, as shown in Expression 13.
Figure imgf000027_0001
Expression 13
[00101] The signal converter 10 may next determine the location of the color point 162 in relation to the first and second primary lines 172, 174, via performance of the above steps for the linear signal conversion operation.
[00102] A first primary linear range may be defined along the subset gamut line 169 between the first primary line 172 and the color line 164. The first linear range is illustrated on FIG. 10 as LQ. Similarly, a second primary linear range may be defined along the subset gamut line 169 between the second primary line 174 and the color line 164. The second primary linear range is illustrated on FIG. 10 as Lp. [00103] The signal converter 10 may then compare the first primary linear range LQ and the second primary linear range Ι_β to determine the relative luminosity emitted by each primary. By dividing the first primary linear range Ι_Θ by the sum of the first and second primary linear ranges, Ι_Θ, Lp, the signal converter 10 may determine a first primary linear ratio. Similarly, by dividing the second primary linear range Lp by the sum of the first and second primary linear ranges, Le, Lp, the signal converter 10 may determine a second primary linear ratio. An example of these calculations, wherein the first primary light emits a red light, and wherein the second primary light emits a green light, are shown by Expression 14.
Figure imgf000028_0001
Expression 14
[00104] The luminosity of the high efficacy light 138 may be calculated from the relative luminosity of the light emitted as defined by the first and second primaries 166, 168. Alternately, the luminosity of the high efficacy light 138 may be determined by the "Y" value of the xyY input signal, as will be appreciated by a person of skill in the art.
[00105] In an embodiment of the present invention, as perhaps best illustrated by the block diagram in FIG. 11 , the signal converter 10 may accept an input signal that defines a color within a color space other than a two spatial plus luminance dimensional color space, such as an xyY color space 182. Non-limiting examples of these alternate input signals may include color spaces defined within the major models of CIE color space 190, RGB color space 192, YUV color space 194, color space HSLJHSV 196, and CMYK color space 198. The input signal received in alternate color spaces may be preconditioned into a source signal 20 defined within a two spatial plus luminance dimensional color space prior to initiating the conversion operation, such as the xyY color space 182.
[00106] As a specific example, provided without limitation, an input signal may be defined within the RGBW, which may be included within the RGB color space 192. For clarity, the preconditioning of the input signal that includes a color defined within the RGBW color space will be described in this example using the matrices to precondition the input signal into a desired source signal 20. A person of skill in the art will appreciate that additional operation that may be used to precondition an input signal that includes a color defined in various other color spaces into the source signal 20 to be used by the signal converter 10 to perform the conversion operation.
[00107] In this example, the RGBW input signal may be represented as non-square matrices. The preconditioning of the RGBW input signal may begin by finding the pseudo-inverse of the non-square matrices that represent the input signal, as shown in Expression 15.
X RX GX BX WX R
Y RY GY BY WY G
z RZ GZ BZ wz B
- 1
R RX GX BX wx X
G RY GY BY WY * Y
B RZ GZ BZ wz Z
Expression 15
[00108] The preconditioning operation may be performed by reducing the non-square matrix into a bidiagonal matrix. The preconditioning operation may then compute the singular value decomposition (SVD), as it is defined in the Fundamental Theorem of Linear Algebra. Using SVD, the preconditioning operation may decompose the non-square matrices into three matrices, as shown in Expression 16.
Figure imgf000029_0001
Expression 16 [00109] In the preceding expression, [A] may represent the non-square matrix, [U] may represent an orthogonal 3x3 matrix, and [∑] may represent a non-square 4x3 matrix. Additionally, the [∑] value may be a diagonal matrix, and therefore may only include zeros off of the diagonal values, as will be understood by a person of skill in the art. The diagonal values may be eigenvalues of [A] (where σ-ι≥ σ2≥ σ3>...≥ ση).
[00110] For [U] and [V], eigenvectors may comprise column value, as they may be defined in the matrices. A computation known within the art may then be performed to precondition the input signal into a inverted matrix. This inverted matrix may provide the preconditioned source signal 20 that may be converted into the output signal 40.
[00111] In an additional embodiment, the signal converter 10 of the present invention may include a photodiode to determine the color of light being emitted by LEDs. The LEDs may be driven by the output signal 40 generated by the signal converter 10 via a conversion operation. Upon sensing the color of emitted light, the photodiode may transmit a color feedback signal to the signal converter 10 of the present invention. The signal converter 10 may then adjust the luminosity emitted by one or more of the primary light sources 52, 54, 56 and/or the high efficacy light source 58. The adjustments may be made to correct for discrepancies between the intended color defined by the output signal 40 and the actual color being emitted by a lighting device 50, driven by the output signal 40.
[00112] Many modifications and other embodiments of the invention will come to the mind of one skilled in the art having the benefit of the teachings presented in the foregoing descriptions and the associated drawings. Therefore, it is understood that the invention is not to be limited to the specific embodiments disclosed, and that modifications and embodiments are intended to be included within the scope of the appended claims.

Claims

That Which Is Claimed Is:
1 . A signal adapting chromacity system to control a lighting device comprising:
a signal conversion engine that receives a source signal designating a color of light defined by a two spatial plus luminance
dimensional color space and converts the source signal to a three
dimensional color space defined within a subset gamut of a full color gamut;
wherein the signal conversion engine performs a conversion operation to convert the source signal to an output signal, and uses the output signal to drive light emitting diodes (LEDs); and
wherein the subset gamut includes a first color light, a second color light and a high efficacy light.
2. A system according to Claim 1 wherein the first color light and the second color light are emitted by colored LEDs, and wherein the high efficacy light is emitted by a high efficacy LED.
3. A system according to Claim 2 further including a conversion coating applied to the colored LEDs to convert a source light wavelength range into a converted light wavelength range.
4. A system according to Claim 1 wherein the two spatial plus luminance dimensional color space is a xyY color space, the three dimensional color space defined within the full color gamut is a RGBW color space, and the three dimensional color space defined within the subset gamut is selected from a group comprising a RGW color space, GBW color space, or RBW color space.
5. A system according to Claim 1 wherein the first color light and the second color light are selected from a group comprising a red light, a blue light, and a green light, and wherein the high efficacy light is a white light.
6. A system according to Claim 1 wherein the high efficacy light is defined by a color temperature between 2000K and 10000K.
7. A system according to Claim 1 wherein the conversion operation converts the source signal to the output signal by performing a matrix conversion operation.
8. A system according to Claim 7 wherein matrices are defined for the two spatial plus luminance dimensional color space included in the source signal;
wherein the matrices are inverted to define inverse matrices that are processed to define a scalar including scalar values that are positive and included in the output signal; and
wherein the output signal defines the color of the light in the three dimensional color space defined within the subset gamut.
9. A system according to Claim 7 wherein the matrices that are defined as non-square matrices undergo square matrix preconditioning.
10. A system according to Claim 1 wherein the conversion operation converts the source signal to the output signal by performing an angular conversion operation.
1 1 . A system according to Claim 10 wherein the three dimensional color space defined by the subset gamut is divided from the full color gamut by using angular determination, the subset gamut including
an origin that includes the high efficacy light,
primaries that include colored light, the primaries defined in the subset gamut including a first subset primary relative to the first color light and a second subset primary relative to the second color light, and
a subset gamut angular range included between a first primary angle relative to the first subset primary and a second primary angle relative to the second primary angle.
12. A system according to Claim 1 1 wherein the three dimensional color space included in the subset gamut is triangularly located between the origin, the first subset primary, and the second subset primary; wherein the color of the light defined by the two spatial plus luminance dimensional color space is plotted in the three dimensional color space of the full color gamut; and
wherein a color angle is located within the three dimensional color space defined by the subset gamut relative to the color of the light, the color angle being located between the first primary angle and the second primary angle.
13. A system according to Claim 12 wherein a first primary angular range is included between the first primary angle and the color angle, and wherein a second primary angular range is included between the second primary angle and the color angle;
wherein the first primary angular range is compared to the second primary angular range to determine a first primary angular ratio proportional to a first portion of the subset gamut angular range comprised of the first primary angular range, and the first primary angular ratio determining a luminosity of the first subset primary included in the output signal;
wherein the second primary angular range is compared to the first primary angular range to determine a second primary angular ratio proportional to a second portion of the subset gamut angular range comprised of the second primary angular range, and the second primary angular ratio determining the luminosity of the second subset primary included in the output signal; and
wherein the luminosity of the first subset primary and second subset primary are analyzed to determine the luminosity of the high efficacy light included in the output signal.
14. A system according to Claim 1 wherein the conversion operation converts the source signal to the output signal by performing a linear conversion operation.
15. A system according to Claim 14 wherein the three dimensional color space defined by the subset gamut is divided from the full color gamut to include an origin that includes the high efficacy light,
primaries that include colored light, the primaries defined in the subset gamuts including a first subset primary relative to the first color light and a second subset primary relative to the second color light, and
a color point defined by plotting the color of the light as defined within the two spatial plus luminance dimensional color space in the three dimensional color space of the full color gamut; and
wherein lines are defined relative to the two spatial plus luminance dimensional color space.
16. A system according to Claim 15 wherein the lines include a first primary line defined between the origin and the first subset primary,
a second primary line defined between the origin and the second subset primary,
a color line defined between origin and the color point including a slope and an axial intercept, and
a subset gamut line that intersects the first primary line, the second primary line, and the color point.
17. A system according to Claim 16 wherein the axial intercept is located at the origin;
wherein the subset gamut line interests the first primary line at a first primary intersection distance from the origin, wherein the subset gamut line intersects the second primary line at a second primary intersection distance from the origin, and wherein the first primary intersection distance and the second primary intersection distance are substantially equal;
wherein a subset gamut linear range is defined along the subset gamut line between the first primary line and the second primary line, the subset gamut linear range including a first primary linear range and a second primary linear range;
wherein the first primary linear range is compared to the second primary linear range to determine a first primary linear ratio proportional to a first portion of the subset gamut linear range comprised of the first primary linear range, and the first primary linear ratio determining a luminosity of the first subset primary included in the output signal;
wherein the second primary linear range is compared to the first primary linear range to determine a second primary linear ratio proportional to a second portion of the subset gamut linear range comprised of the second primary linear range, and the second primary linear ratio determining the luminosity of the second subset primary included in the output signal; and wherein the luminosity of the first subset primary and the second subset primary are analyzed to determine the desired luminosity of the high efficacy light included in the output signal.
18. A system according to Claim 1 wherein a color feedback signal is received to perform a color correction operation.
19. A method for controlling a lighting device comprising: receiving a source signal designating a color of light defined by a two spatial plus luminance dimensional color space;
converting the source signal to an output signal defined by a three dimensional color space defined within a subset gamut of a full color gamut by performing a conversion operation, the subset gamut including a first color light, a second color light and a high efficacy light; and
using the output signal to drive light emitting diodes (LEDs).
20. A method according to Claim 19 wherein the first color light and the second color light are emitted by colored LEDs, and wherein the high efficacy light is emitted by a high efficacy LED.
21 . A method according to Claim 20 further including converting a source light wavelength range into a converted light wavelength range by applying a conversion coating to the colored LEDs.
22. A method according to Claim 19 wherein the two spatial plus luminance dimensional color space is a xyY color space, the three dimensional color space defined within the full color gamut is a RGBW color space, and the three dimensional color space defined within the subset gamut is selected from a group comprising a RGW color space, GBW color space, or RBW color space.
23. A method according to Claim 19 further including selecting the first color light and the second color light from a group comprising a red light, a blue light, and a green light, and wherein the high efficacy light is a white light.
24. A method according to Claim 19 wherein the high efficacy light is defined by a color temperature between 2000K and 10000K.
25. A method according to Claim 19 further including performing a matrix conversion operation to convert the source signal to the output signal.
26. A method according to Claim 25 wherein performing the matrix conversion operation further includes defining matrices for the two spatial plus luminance dimensional color space included in the source signal;
inverting the matrices to define inverse matrices; processing the inverse matrices to define a scalar including scalar values that are positive and included in the output signal; and
defining the color of the light in the three dimensional color space defined within the subset gamut in the output signal.
27. A method according to Claim 25 further including preconditioning the matrices that are defined as non-square matrices.
28. A method according to Claim 19 further including performing an angular conversion operation to convert the source signal to the output signal.
29. A method according to Claim 28 wherein performing the angular conversion operation further includes dividing three dimensional color space defined by the full color gamut by using angular determination to include the three dimensional color space defined by the subset gamut by including
an origin that includes the high efficacy light,
primaries that include colored light, the primaries defined in the subset gamut including a first subset primary relative to the first color light and a second subset primary relative to the second color light, and
a subset gamut angular range included between a first primary angle relative to the first subset primary and a second primary angle relative to the second primary angle.
30. A method according to Claim 29 wherein performing the angular conversion operation further includes triangularly locating the three dimensional color space included in the subset gamut between the origin, the first subset primary, and the second subset primary;
plotting the color of the light defined by two spatial plus luminance dimensional color space in the three dimensional color space of the full color gamut; and
locating a color angle within the three dimensional color space defined by the subset gamut relative to the color of the light, the color angle being located between the first primary angle and the second primary angle.
31 . A method according to Claim 30 wherein performing the angular conversion operation further includes locating a first primary angular range between the first primary angle and the color angle;
locating a second primary angular range between the second primary angle and the color angle;
comparing the first primary angular range to the second primary angular range to determine a first primary angular ratio proportional to a first portion of the subset gamut angular range comprised of the first primary angular range, and the first primary angular ratio determining a luminosity of the first subset primary included in the output signal;
comparing the second primary angular range to the first primary angular range to determine a second primary angular ratio proportional to a second portion of the subset gamut angular range comprised of the second primary angular range, and the second primary angular ratio determining the luminosity of the second subset primary included in the output signal; and analyzing the luminosity of the first subset primary and second subset primary to determine the luminosity of the high efficacy light included in the output signal.
32. A method according to Claim 19 further including performing a linear conversion operation to convert the source signal to the output signal.
33. A method according to Claim 32 wherein performing the linear conversion operation further includes dividing the three dimensional color space defined by the full color gamut to include the three dimensional color space defined by the subset gamut by including
an origin that includes the high efficacy light,
primaries that include colored light, the primaries defined in the subset gamuts including a first subset primary relative to the first color light and a second subset primary relative to the second color light, and
a color point defined by plotting the color of the light as defined within the two spatial plus luminance dimensional color space in the three dimensional color space of the full color gamut; and
defining lines relative to the two spatial plus luminance dimensional color space.
34. A method according to Claim 33 wherein the lines include a first primary line defined between the origin and the first subset primary,
a second primary line defined between the origin and the second subset primary,
a color line defined between origin and the color point including a slope and an axial intercept, and a subset gamut line that intersects the first primary line, the second primary line, and the color point.
35. A method according to Claim 34 wherein performing the linear conversion operation further includes locating the axial intercept at the origin;
wherein the subset gamut line interests the first primary line at a first primary intersection distance from the origin, wherein the subset gamut line intersects the second primary line at a second primary intersection distance from the origin, and wherein the first primary intersection distance and the second primary intersection distance are substantially equal;
defining a subset gamut linear range along the subset gamut line between the first primary line and the second primary line, the subset gamut linear range including a first primary linear range and a second primary linear range;
comparing the first primary linear range to the second primary linear range to determine a first primary linear ratio proportional to a first portion of the subset gamut linear range comprised of the first primary linear range, and the first primary linear ratio determining a luminosity of the first subset primary included in the output signal;
comparing the second primary linear range to the first primary linear range to determine a second primary linear ratio proportional to a second portion of the subset gamut linear range comprised of the second primary linear range, and the second primary linear ratio determining the luminosity of the second subset primary included in the output signal; and analyzing the luminosity of the first subset primary and the second subset primary to determine the desired luminosity of the high efficacy light included in the output signal.
36. A method according to Claim 19 further including receiving a color feedback signal and performing a color correction operation.
PCT/US2012/037884 2011-05-15 2012-05-15 High efficacy lighting signal converter and associated methods WO2012158665A2 (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
EP18167602.4A EP3367375A1 (en) 2011-05-15 2012-05-15 High efficacy lighting signal converter
EP12725924.0A EP2710580A2 (en) 2011-05-15 2012-05-15 High efficacy lighting signal converter and associated methods

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US13/107,928 2011-05-15
US13/107,928 US8547391B2 (en) 2011-05-15 2011-05-15 High efficacy lighting signal converter and associated methods

Publications (3)

Publication Number Publication Date
WO2012158665A2 true WO2012158665A2 (en) 2012-11-22
WO2012158665A3 WO2012158665A3 (en) 2013-01-17
WO2012158665A9 WO2012158665A9 (en) 2013-03-07

Family

ID=46208777

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2012/037884 WO2012158665A2 (en) 2011-05-15 2012-05-15 High efficacy lighting signal converter and associated methods

Country Status (3)

Country Link
US (2) US8547391B2 (en)
EP (2) EP3367375A1 (en)
WO (1) WO2012158665A2 (en)

Cited By (31)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8547391B2 (en) 2011-05-15 2013-10-01 Lighting Science Group Corporation High efficacy lighting signal converter and associated methods
US8841864B2 (en) 2011-12-05 2014-09-23 Biological Illumination, Llc Tunable LED lamp for producing biologically-adjusted light
US8847436B2 (en) 2011-09-12 2014-09-30 Lighting Science Group Corporation System for inductively powering an electrical device and associated methods
US8866414B2 (en) 2011-12-05 2014-10-21 Biological Illumination, Llc Tunable LED lamp for producing biologically-adjusted light
US8901850B2 (en) 2012-05-06 2014-12-02 Lighting Science Group Corporation Adaptive anti-glare light system and associated methods
US8933638B2 (en) 2011-05-15 2015-01-13 Lighting Science Group Corporation Programmable luminaire and programmable luminaire system
US8941329B2 (en) 2011-12-05 2015-01-27 Biological Illumination, Llc Tunable LED lamp for producing biologically-adjusted light
US8963450B2 (en) 2011-12-05 2015-02-24 Biological Illumination, Llc Adaptable biologically-adjusted indirect lighting device and associated methods
USD723729S1 (en) 2013-03-15 2015-03-03 Lighting Science Group Corporation Low bay luminaire
DE102013015343A1 (en) * 2013-09-17 2015-03-19 Lisa Dräxlmaier GmbH Lighting device for ambient lighting in vehicle interiors
US9006987B2 (en) 2012-05-07 2015-04-14 Lighting Science Group, Inc. Wall-mountable luminaire and associated systems and methods
US9018854B2 (en) 2013-03-14 2015-04-28 Biological Illumination, Llc Lighting system with reduced physioneural compression and associate methods
US9024536B2 (en) 2011-12-05 2015-05-05 Biological Illumination, Llc Tunable LED lamp for producing biologically-adjusted light and associated methods
US9036868B2 (en) 2010-11-09 2015-05-19 Biological Illumination, Llc Sustainable outdoor lighting system for use in environmentally photo-sensitive area
US9151453B2 (en) 2013-03-15 2015-10-06 Lighting Science Group Corporation Magnetically-mountable lighting device and associated systems and methods
US9157618B2 (en) 2013-03-15 2015-10-13 Lighting Science Group Corporation Trough luminaire with magnetic lighting devices and associated systems and methods
US9173269B2 (en) 2011-05-15 2015-10-27 Lighting Science Group Corporation Lighting system for accentuating regions of a layer and associated methods
US9174067B2 (en) 2012-10-15 2015-11-03 Biological Illumination, Llc System for treating light treatable conditions and associated methods
US9220202B2 (en) 2011-12-05 2015-12-29 Biological Illumination, Llc Lighting system to control the circadian rhythm of agricultural products and associated methods
US9222653B2 (en) 2013-03-15 2015-12-29 Lighting Science Group Corporation Concave low profile luminaire with magnetic lighting devices and associated systems and methods
US9265968B2 (en) 2010-07-23 2016-02-23 Biological Illumination, Llc System for generating non-homogenous biologically-adjusted light and associated methods
US9289574B2 (en) 2011-12-05 2016-03-22 Biological Illumination, Llc Three-channel tuned LED lamp for producing biologically-adjusted light
US9347655B2 (en) 2013-03-11 2016-05-24 Lighting Science Group Corporation Rotatable lighting device
US9353935B2 (en) 2013-03-11 2016-05-31 Lighting Science Group, Corporation Rotatable lighting device
US9366409B2 (en) 2012-05-06 2016-06-14 Lighting Science Group Corporation Tunable lighting apparatus
US9402294B2 (en) 2012-05-08 2016-07-26 Lighting Science Group Corporation Self-calibrating multi-directional security luminaire and associated methods
US9532423B2 (en) 2010-07-23 2016-12-27 Lighting Science Group Corporation System and methods for operating a lighting device
US9595118B2 (en) 2011-05-15 2017-03-14 Lighting Science Group Corporation System for generating non-homogenous light and associated methods
US9681522B2 (en) 2012-05-06 2017-06-13 Lighting Science Group Corporation Adaptive light system and associated methods
US9693414B2 (en) 2011-12-05 2017-06-27 Biological Illumination, Llc LED lamp for producing biologically-adjusted light
US9827439B2 (en) 2010-07-23 2017-11-28 Biological Illumination, Llc System for dynamically adjusting circadian rhythm responsive to scheduled events and associated methods

Families Citing this family (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8754832B2 (en) 2011-05-15 2014-06-17 Lighting Science Group Corporation Lighting system for accenting regions of a layer and associated methods
KR101803571B1 (en) * 2011-06-17 2017-11-30 엘지디스플레이 주식회사 Stereoscopic Image Display Device and Driving Method thereof
US8515289B2 (en) 2011-11-21 2013-08-20 Environmental Light Technologies Corp. Wavelength sensing lighting system and associated methods for national security application
US8680457B2 (en) 2012-05-07 2014-03-25 Lighting Science Group Corporation Motion detection system and associated methods having at least one LED of second set of LEDs to vary its voltage
US10721808B2 (en) * 2012-07-01 2020-07-21 Ideal Industries Lighting Llc Light fixture control
US10212892B2 (en) 2012-07-10 2019-02-26 Once Innovatians, Inc. Light sources adapted to spectral sensitivity of plant
US10028448B2 (en) 2012-07-10 2018-07-24 Once Innovations, Inc. Light sources adapted to spectral sensitivity of plants
TW201413225A (en) * 2012-09-28 2014-04-01 Askey Computer Corp Method and apparatus for recognizing color
US10244595B2 (en) 2014-07-21 2019-03-26 Once Innovations, Inc. Photonic engine system for actuating the photosynthetic electron transport chain
US9943042B2 (en) 2015-05-18 2018-04-17 Biological Innovation & Optimization Systems, LLC Grow light embodying power delivery and data communications features
US9844116B2 (en) 2015-09-15 2017-12-12 Biological Innovation & Optimization Systems, LLC Systems and methods for controlling the spectral content of LED lighting devices
US9788387B2 (en) 2015-09-15 2017-10-10 Biological Innovation & Optimization Systems, LLC Systems and methods for controlling the spectral content of LED lighting devices
US10595376B2 (en) 2016-09-13 2020-03-17 Biological Innovation & Optimization Systems, LLC Systems and methods for controlling the spectral content of LED lighting devices

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2009121539A1 (en) * 2008-03-31 2009-10-08 Tridonicatco Schweiz Ag System and method for controlling leds
CN101702421A (en) * 2009-10-23 2010-05-05 中外合资江苏稳润光电有限公司 Manufacturing method of white light LED

Family Cites Families (86)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB9204798D0 (en) 1992-03-05 1992-04-15 Rank Brimar Ltd Spatial light modulator system
US5680230A (en) * 1993-09-09 1997-10-21 Canon Kabushiki Kaisha Image processing method and apparatus thereof
US5523878A (en) 1994-06-30 1996-06-04 Texas Instruments Incorporated Self-assembled monolayer coating for micro-mechanical devices
KR100449129B1 (en) 1995-10-25 2005-01-24 인스트루먼츠 인코포레이티드 텍사스 Investigation system
WO1998037448A1 (en) 1997-02-19 1998-08-27 Digital Projection Limited Illumination system
US20040052076A1 (en) 1997-08-26 2004-03-18 Mueller George G. Controlled lighting methods and apparatus
US7598686B2 (en) 1997-12-17 2009-10-06 Philips Solid-State Lighting Solutions, Inc. Organic light emitting diode methods and apparatus
US6356700B1 (en) 1998-06-08 2002-03-12 Karlheinz Strobl Efficient light engine systems, components and methods of manufacture
US7075707B1 (en) 1998-11-25 2006-07-11 Research Foundation Of The University Of Central Florida, Incorporated Substrate design for optimized performance of up-conversion phosphors utilizing proper thermal management
US6140646A (en) 1998-12-17 2000-10-31 Sarnoff Corporation Direct view infrared MEMS structure
US6870523B1 (en) 2000-06-07 2005-03-22 Genoa Color Technologies Device, system and method for electronic true color display
US6873450B2 (en) 2000-08-11 2005-03-29 Reflectivity, Inc Micromirrors with mechanisms for enhancing coupling of the micromirrors with electrostatic fields
JP3940596B2 (en) 2001-05-24 2007-07-04 松下電器産業株式会社 Illumination light source
WO2002097884A1 (en) 2001-05-26 2002-12-05 Gelcore, Llc High power led module for spot illumination
ATE475168T1 (en) * 2001-06-07 2010-08-15 Genoa Color Technologies Ltd SYSTEM AND METHOD FOR DATA CONVERSION FOR ADVERTISEMENTS WITH A LARGE STAGE LADDER
US6594090B2 (en) 2001-08-27 2003-07-15 Eastman Kodak Company Laser projection display system
EP2423717A3 (en) 2001-12-14 2012-12-12 QUALCOMM MEMS Technologies, Inc. Uniform illumination system
US6787999B2 (en) 2002-10-03 2004-09-07 Gelcore, Llc LED-based modular lamp
US7507001B2 (en) * 2002-11-19 2009-03-24 Denovo Lighting, Llc Retrofit LED lamp for fluorescent fixtures without ballast
US6871982B2 (en) 2003-01-24 2005-03-29 Digital Optics International Corporation High-density illumination system
US6767111B1 (en) 2003-02-26 2004-07-27 Kuo-Yen Lai Projection light source from light emitting diodes
US7556406B2 (en) 2003-03-31 2009-07-07 Lumination Llc Led light with active cooling
WO2004100624A2 (en) * 2003-05-05 2004-11-18 Color Kinetics, Inc. Lighting methods and systems
KR100943273B1 (en) 2003-05-07 2010-02-23 삼성전자주식회사 Method and apparatus for converting a 4-color, and organic electro-luminescent display device and using the same
US7083304B2 (en) 2003-08-01 2006-08-01 Illumination Management Solutions, Inc. Apparatus and method of using light sources of differing wavelengths in an unitized beam
JP4417700B2 (en) 2003-09-19 2010-02-17 株式会社リコー Lighting device
EP1681728B1 (en) * 2003-10-15 2018-11-21 Nichia Corporation Light-emitting device
US7728846B2 (en) 2003-10-21 2010-06-01 Samsung Electronics Co., Ltd. Method and apparatus for converting from source color space to RGBW target color space
US7598961B2 (en) * 2003-10-21 2009-10-06 Samsung Electronics Co., Ltd. method and apparatus for converting from a source color space to a target color space
US7289090B2 (en) 2003-12-10 2007-10-30 Texas Instruments Incorporated Pulsed LED scan-ring array for boosting display system lumens
US7246923B2 (en) 2004-02-11 2007-07-24 3M Innovative Properties Company Reshaping light source modules and illumination systems using the same
US7300177B2 (en) 2004-02-11 2007-11-27 3M Innovative Properties Illumination system having a plurality of light source modules disposed in an array with a non-radially symmetrical aperture
WO2005083493A1 (en) 2004-02-27 2005-09-09 Matsushita Electric Industrial Co., Ltd. Illuminating light source and two-dimensional image display using same
WO2005089293A2 (en) * 2004-03-15 2005-09-29 Color Kinetics Incorporated Methods and systems for providing lighting systems
JP4121477B2 (en) 2004-03-31 2008-07-23 三洋電機株式会社 Illumination device and projection display device
US20060002108A1 (en) 2004-06-30 2006-01-05 Ouderkirk Andrew J Phosphor based illumination system having a short pass reflector and method of making same
US7255469B2 (en) 2004-06-30 2007-08-14 3M Innovative Properties Company Phosphor based illumination system having a light guide and an interference reflector
US7684007B2 (en) 2004-08-23 2010-03-23 The Boeing Company Adaptive and interactive scene illumination
KR100672357B1 (en) 2004-10-04 2007-01-24 엘지전자 주식회사 LED suface emitting source and projection display system of the same
US7261453B2 (en) 2005-01-25 2007-08-28 Morejon Israel J LED polarizing optics for color illumination system and method of using same
US20060164005A1 (en) 2005-01-25 2006-07-27 Chuan-Sheng Sun Illumination apparatus having adjustable color temperature and method for adjusting the color temperature
US7325956B2 (en) 2005-01-25 2008-02-05 Jabil Circuit, Inc. Light-emitting diode (LED) illumination system for a digital micro-mirror device (DMD) and method of providing same
ATE528961T1 (en) * 2005-04-14 2011-10-15 Koninkl Philips Electronics Nv COLOR CONTROL OF WHITE LEDS
JP4244957B2 (en) 2005-05-19 2009-03-25 カシオ計算機株式会社 Light source device and projection device
JP2006337858A (en) 2005-06-03 2006-12-14 Fujifilm Holdings Corp Optical modulation element array
US7434946B2 (en) 2005-06-17 2008-10-14 Texas Instruments Incorporated Illumination system with integrated heat dissipation device for use in display systems employing spatial light modulators
JP4588571B2 (en) 2005-06-28 2010-12-01 セイコーインスツル株式会社 Illumination device and display device including the same
US20070013871A1 (en) 2005-07-15 2007-01-18 Marshall Stephen W Light-emitting diode (LED) illumination in display systems using spatial light modulators (SLM)
US7651227B2 (en) 2005-09-13 2010-01-26 Texas Instruments Incorporated Projection system and method including spatial light modulator and compact diffractive optics
US7429983B2 (en) 2005-11-01 2008-09-30 Cheetah Omni, Llc Packet-based digital display system
US20070157492A1 (en) 2005-12-13 2007-07-12 Tower Street Technologies Limited Coupler With Improved Jaw Configuration
US7540616B2 (en) 2005-12-23 2009-06-02 3M Innovative Properties Company Polarized, multicolor LED-based illumination source
US7342658B2 (en) 2005-12-28 2008-03-11 Eastman Kodak Company Programmable spectral imaging system
US20070159492A1 (en) 2006-01-11 2007-07-12 Wintek Corporation Image processing method and pixel arrangement used in the same
US7832878B2 (en) 2006-03-06 2010-11-16 Innovations In Optics, Inc. Light emitting diode projection system
US7834867B2 (en) 2006-04-11 2010-11-16 Microvision, Inc. Integrated photonics module and devices using integrated photonics modules
US20090128781A1 (en) 2006-06-13 2009-05-21 Kenneth Li LED multiplexer and recycler and micro-projector incorporating the Same
DE102006027779A1 (en) 2006-06-16 2007-12-20 Robert Bosch Gmbh Method for fixing an electrical or electronic component, in particular a printed circuit board, in a housing and fixing element therefor
US20080143973A1 (en) 2006-10-12 2008-06-19 Jing Miau Wu Light source device of laser LED and projector having the same device
US7766490B2 (en) 2006-12-13 2010-08-03 Philips Lumileds Lighting Company, Llc Multi-color primary light generation in a projection system using LEDs
JP5086822B2 (en) 2007-01-31 2012-11-28 パナソニック株式会社 Wavelength conversion device and two-dimensional image display device
US20080198572A1 (en) 2007-02-21 2008-08-21 Medendorp Nicholas W LED lighting systems including luminescent layers on remote reflectors
JP2008235439A (en) 2007-03-19 2008-10-02 Nec Lighting Ltd White light source device
EP2141708B1 (en) 2007-03-27 2017-04-19 Toshiba Electron Tubes & Devices Co., Ltd. Scintillator panel and radiation detector
US7703943B2 (en) 2007-05-07 2010-04-27 Intematix Corporation Color tunable light source
US7719766B2 (en) 2007-06-20 2010-05-18 Texas Instruments Incorporated Illumination source and method therefor
US7709811B2 (en) 2007-07-03 2010-05-04 Conner Arlie R Light emitting diode illumination system
KR101329125B1 (en) 2007-08-13 2013-11-14 삼성전자주식회사 Rgb to rgbw color decomposition method and system
TWI383238B (en) 2007-08-29 2013-01-21 Young Optics Inc Illumination system
WO2009047683A2 (en) 2007-10-08 2009-04-16 Koninklijke Philips Electronics N.V. Lighting device, array of lighting devices and optical projection device
JP5280106B2 (en) 2007-12-07 2013-09-04 デクセリアルズ株式会社 Light source device and display device
CA2706498A1 (en) 2007-12-24 2009-07-02 Columbia Insurance Company System for representing colors including an integrating light capsule
WO2009092041A2 (en) 2008-01-16 2009-07-23 Abu-Ageel Nayef M Illumination systems utilizing wavelength conversion materials
US8337029B2 (en) 2008-01-17 2012-12-25 Intematix Corporation Light emitting device with phosphor wavelength conversion
RU2490816C2 (en) 2008-02-08 2013-08-20 Конинклейке Филипс Электроникс Н.В. Modular lighting unit
US8531126B2 (en) 2008-02-13 2013-09-10 Canon Components, Inc. White light emitting apparatus and line illuminator using the same in image reading apparatus
JP4893827B2 (en) * 2008-02-15 2012-03-07 パナソニック株式会社 Color management module, color management device, integrated circuit, display device, and color management method
WO2009134433A2 (en) 2008-05-02 2009-11-05 Light Prescriptions Innovators, Llc Remote-phosphor led downlight
KR20100030470A (en) 2008-09-10 2010-03-18 삼성전자주식회사 Light emitting device and system providing white light with various color temperatures
US8665296B2 (en) 2008-10-21 2014-03-04 Zulch Laboratories, Inc. Color generation change using multiple illuminant types
US8083364B2 (en) 2008-12-29 2011-12-27 Osram Sylvania Inc. Remote phosphor LED illumination system
WO2010090862A2 (en) 2009-01-21 2010-08-12 Abu-Ageel Nayef M Illumination system utilizing wavelength conversion materials and light recycling
US7828453B2 (en) 2009-03-10 2010-11-09 Nepes Led Corporation Light emitting device and lamp-cover structure containing luminescent material
KR101034935B1 (en) * 2009-07-30 2011-05-17 박상희 LED light for broadcast and photo
JP2012029276A (en) * 2010-06-21 2012-02-09 Ricoh Co Ltd Image forming device, color adjustment method and color adjustment program
US8547391B2 (en) 2011-05-15 2013-10-01 Lighting Science Group Corporation High efficacy lighting signal converter and associated methods

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2009121539A1 (en) * 2008-03-31 2009-10-08 Tridonicatco Schweiz Ag System and method for controlling leds
CN101702421A (en) * 2009-10-23 2010-05-05 中外合资江苏稳润光电有限公司 Manufacturing method of white light LED

Cited By (36)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9827439B2 (en) 2010-07-23 2017-11-28 Biological Illumination, Llc System for dynamically adjusting circadian rhythm responsive to scheduled events and associated methods
US9265968B2 (en) 2010-07-23 2016-02-23 Biological Illumination, Llc System for generating non-homogenous biologically-adjusted light and associated methods
US9532423B2 (en) 2010-07-23 2016-12-27 Lighting Science Group Corporation System and methods for operating a lighting device
US9036868B2 (en) 2010-11-09 2015-05-19 Biological Illumination, Llc Sustainable outdoor lighting system for use in environmentally photo-sensitive area
US9173269B2 (en) 2011-05-15 2015-10-27 Lighting Science Group Corporation Lighting system for accentuating regions of a layer and associated methods
US8866839B2 (en) 2011-05-15 2014-10-21 Lighting Science Group Corporation High efficacy lighting signal converter and associated methods
US8933638B2 (en) 2011-05-15 2015-01-13 Lighting Science Group Corporation Programmable luminaire and programmable luminaire system
US8547391B2 (en) 2011-05-15 2013-10-01 Lighting Science Group Corporation High efficacy lighting signal converter and associated methods
US9595118B2 (en) 2011-05-15 2017-03-14 Lighting Science Group Corporation System for generating non-homogenous light and associated methods
US8847436B2 (en) 2011-09-12 2014-09-30 Lighting Science Group Corporation System for inductively powering an electrical device and associated methods
US9131573B2 (en) 2011-12-05 2015-09-08 Biological Illumination, Llc Tunable LED lamp for producing biologically-adjusted light
US9220202B2 (en) 2011-12-05 2015-12-29 Biological Illumination, Llc Lighting system to control the circadian rhythm of agricultural products and associated methods
US8941329B2 (en) 2011-12-05 2015-01-27 Biological Illumination, Llc Tunable LED lamp for producing biologically-adjusted light
US9024536B2 (en) 2011-12-05 2015-05-05 Biological Illumination, Llc Tunable LED lamp for producing biologically-adjusted light and associated methods
US8866414B2 (en) 2011-12-05 2014-10-21 Biological Illumination, Llc Tunable LED lamp for producing biologically-adjusted light
US9289574B2 (en) 2011-12-05 2016-03-22 Biological Illumination, Llc Three-channel tuned LED lamp for producing biologically-adjusted light
US9693414B2 (en) 2011-12-05 2017-06-27 Biological Illumination, Llc LED lamp for producing biologically-adjusted light
US8841864B2 (en) 2011-12-05 2014-09-23 Biological Illumination, Llc Tunable LED lamp for producing biologically-adjusted light
US8963450B2 (en) 2011-12-05 2015-02-24 Biological Illumination, Llc Adaptable biologically-adjusted indirect lighting device and associated methods
US9913341B2 (en) 2011-12-05 2018-03-06 Biological Illumination, Llc LED lamp for producing biologically-adjusted light including a cyan LED
US9366409B2 (en) 2012-05-06 2016-06-14 Lighting Science Group Corporation Tunable lighting apparatus
US9681522B2 (en) 2012-05-06 2017-06-13 Lighting Science Group Corporation Adaptive light system and associated methods
US8901850B2 (en) 2012-05-06 2014-12-02 Lighting Science Group Corporation Adaptive anti-glare light system and associated methods
US9696005B2 (en) 2012-05-06 2017-07-04 Lighting Science Group Corporation Tunable lighting apparatus
US9006987B2 (en) 2012-05-07 2015-04-14 Lighting Science Group, Inc. Wall-mountable luminaire and associated systems and methods
US9402294B2 (en) 2012-05-08 2016-07-26 Lighting Science Group Corporation Self-calibrating multi-directional security luminaire and associated methods
US9174067B2 (en) 2012-10-15 2015-11-03 Biological Illumination, Llc System for treating light treatable conditions and associated methods
US9353935B2 (en) 2013-03-11 2016-05-31 Lighting Science Group, Corporation Rotatable lighting device
US9347655B2 (en) 2013-03-11 2016-05-24 Lighting Science Group Corporation Rotatable lighting device
US9018854B2 (en) 2013-03-14 2015-04-28 Biological Illumination, Llc Lighting system with reduced physioneural compression and associate methods
US9222653B2 (en) 2013-03-15 2015-12-29 Lighting Science Group Corporation Concave low profile luminaire with magnetic lighting devices and associated systems and methods
US9157618B2 (en) 2013-03-15 2015-10-13 Lighting Science Group Corporation Trough luminaire with magnetic lighting devices and associated systems and methods
US9151453B2 (en) 2013-03-15 2015-10-06 Lighting Science Group Corporation Magnetically-mountable lighting device and associated systems and methods
USD723729S1 (en) 2013-03-15 2015-03-03 Lighting Science Group Corporation Low bay luminaire
DE102013015343A1 (en) * 2013-09-17 2015-03-19 Lisa Dräxlmaier GmbH Lighting device for ambient lighting in vehicle interiors
DE102013015343B4 (en) * 2013-09-17 2020-12-03 Lisa Dräxlmaier GmbH Lighting device for ambient lighting in vehicle interiors

Also Published As

Publication number Publication date
US8547391B2 (en) 2013-10-01
WO2012158665A9 (en) 2013-03-07
US20130313997A1 (en) 2013-11-28
US20120286700A1 (en) 2012-11-15
EP3367375A1 (en) 2018-08-29
WO2012158665A3 (en) 2013-01-17
EP2710580A2 (en) 2014-03-26
US8866839B2 (en) 2014-10-21

Similar Documents

Publication Publication Date Title
EP2710580A2 (en) High efficacy lighting signal converter and associated methods
US8981672B2 (en) Color control of dynamic lighting
EP1636788B1 (en) Transforming three color input signals to more color signals
US6967447B2 (en) Pre-configured light modules
JP5345271B2 (en) Image display device
US20110241552A1 (en) Method for maximizing the performance of a luminaire
KR20040069336A (en) Colour control for led-based luminaire
WO2008035259A1 (en) Dynamic gamut control
US10290264B2 (en) Method for calibrating a color space transformation, method for color space transformation and color control system
CN101909215B (en) Color conversion method and corresponding color display method thereof
CN110337158B (en) Light emitting control method and device of light emitting diode
US20200045206A1 (en) Device and method for controlling color gamut, and display device including the device
Murdoch Dynamic color control in multiprimary tunable LED lighting systems
WO2012032644A1 (en) Image projection apparatus and color correction method
CA2848855C (en) Operation of a led lighting system at a target output color using a color sensor
US11363689B2 (en) Method for generating light spectra and corresponding device
US8525823B2 (en) Liquid crystal display device
EP2044811B1 (en) Color point adjustment
ŽUKAUSKAS et al. LEDs in lighting with tailored color quality
CN113189831B (en) Laser projection apparatus and driving method thereof
Sanchez et al. Quantification of the Helmholtz-Kohlrausch effect for CRT color monitors
KR20190090938A (en) Apparatus and method for optimizing led lighting
TW202307821A (en) Methods for compensating colors based on luminance adjustment parameters and the related display devices
Narendra et al. Colour Rendering For True Colour Led Display System

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 12725924

Country of ref document: EP

Kind code of ref document: A2

NENP Non-entry into the national phase

Ref country code: DE

WWE Wipo information: entry into national phase

Ref document number: 2012725924

Country of ref document: EP